Signature circuit for non-volatile memory device.
Abstract
A signature circuit stores signature information indicative of one of a plurality of device functions of a non-volatile memory device which includes first memory cells (MS₀-MS2m+1) which are respectively coupled to one of a plurality of word lines (X₀-Xn) and to one of a plurality of bit lines (b₀-b2m+1). The signature circuit includes second memory cells (SS₀-SS2m+1, T1a, T2a, T1x, T2x) which are respectively connected to the bit lines which are grouped into a plurality of blocks, at least one predetermined word line (Xn+1) which is provided exclusively for the second memory cells and is connected to each of the memory cells, and a selecting circuit (Q₀-Q2m+1, Qx, Qx+1, Q1a, Q2a, Q1x, Q2x, Q3a, Q3x) coupled to the bit lines for selecting one of the blocks. The second memory cells in each of the blocks store one kind of signature information, so that a number of blocks is equal to a number of kinds of signature information that can be stored in the signature circuit.

Term
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Projected expiry passed 14 February 2011, 15.6 years ago.
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10 claims: 5 independent, 5 dependent
- 1A signature circuit for storing signature information indicative of one of a plurality of device functions of a non-volatile memory device, said non-volatile memory device including first memory cells (MS₀-MS 2m+1 ) which are respectively coupled to one of a plurality of word lines (X₀-X n ) and to one of a plurality of bit lines (b₀-b 2m+1 ), said signature circuit comprising second memory cells (SS₀-SS 2m+1 , T1a, T2a, T1x, T2x) which are respectively connected to the bit lines, characterized in that said bit lines (b₀-b 2m+1 ) are grouped into a plurality of blocks; and that there are provided:at least one predetermined word line (X n+1 ) which is provided exclusively for said second memory cells and is connected to each of said second memory cells;and selecting means (Q₀-Q 2m+1 , Q x , Q x+1 , Q1a, Q2a, Q1x, Q2x, Q3a, Q3x) coupled to the bit lines for selecting one of the blocks, said second memory cells in each of the blocks storing one kind of signature information, so that a number of blocks is equal to a number of kinds of signature information that can be stored in the signature circuit.
- 4The signature circuit as claimed in any of claims 1 to 3, characterized in that said predetermined word line (X n+1 ) and said second memory cells (SS₀-SS 2m+1 ) are a part of a memory cell array (11) which is formed by the word lines (X₀-X n ), the bit lines (b₀-b 2m+1 ) and the first memory cells (MS₀-MS 2m+1 ).
- 5The signature circuit as claimed in any of claims 1 to 4, characterized in that there is further provided an address buffer circuit (19) for generating the selection signal based on an address signal and a predetermined signal which has a specific logic level during a standby mode of the non-volatile memory device.
- 9The signature circuit as claimed in any of claims 6 to 8, characterized in that said predetermined word line (X n+1 ) and said second memory cells (T1a, T2a, T1x, T2x) are not a part of a memory cell array (11) which is formed by the word lines (X₀-X n ), the bit lines (b₀-b 2m+1 ) and the first memory cells (MS₀-MS 2m+1 ).
- 10The signature circuit as claimed in any of claims 6 to 9, characterized in that there is further provided an address buffer circuit (19) for generating the selection signal based on an address signal and a predetermined signal which has a specific logic level during a standby mode of the non-volatile memory device.
Independent claims5
33 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
0001The present invention generally relates to signature circuits, and more particularly to a signature circuit which stores device functions of a non-volatile memory device.
0002In non-volatile memory devices such as a programmable read only memory (PROM), the device function such as the write function differs depending on the chip although the same basic chip (PROM) is used. Hence, in order to clearly indicate the device function of the chip to the user, the PROM is provided with a signature circuit which prestores signature information, that is, the information which describes the device function.
0003Conventionally, the following measures are taken in order to realize a plurality of kinds of device functions with a single basic chip. For example, one bonding wire interconnection is made with respect to the basic chip when realizing a first device function, and another bonding wire interconnection is made with respect to the same basic chip when realizing a second device function. As a result, it becomes possible to produce chips having different device functions using the same basic chip. The device function of each chip is stored in the signature circuit in the form of signature information.
0004FIG.1 generally shows a PROM which is provided with an example of a conventional signature circuit. In FIG.1, the PROM includes a memory cell array 1, a row decoder 2, a column decoder 3 and a sense amplifier 4.
0005FIG.2 shows the conventional signature circuit together with related parts of the PROM shown in FIG.1. One of bit lines b0 through bn is selected by a corresponding one of bit line selection signals Y0 through Yn applied to n-channel field effect transistors (FETs) Q0 through Qn in response to an address signal, and the selected bit line is connected to a sense amplifier 4. One of word lines W0 through Wn+2 is selected by a corresponding one of word line selection signals X0 through Xn+2 in response to the address signal. Only one word line and memory cells MS0 through MSn are shown in FIG.1 with respect to the word lines W0 through Wn which are connected to the memory cells which store the actual information. A memory cell which is written with a value "1" permits a current flow when the word line connected thereto is selected, while a memory cell which is not written with information (or written with a value "0") does not permit a current flow when the word line connected thereto is selected.
0006A plurality of ROM cells for storing first signature information are connected to the word line Wn+1, and a plurality of ROM cells for storing second signature information are connected to the word line Wn+2. In this example, a short-circuit indicated by a mark "x" is formed between a drain of the ROM cell and the corresponding bit line to store the value "1", and an open circuit indicated by a mark "o" is formed between the drain of the ROM cell and the corresponding bit line to store the value "0". The values "0" and "1" are written into the ROM cells which connected to the word lines Wn+1 and Wn+2 to store the first and second signature information. The writing of information such as the writing of information to the memory cells MS which are connected to the word lines W0 through Wn is not carried out with respect to the ROM cells for storing the first and second signature information.
0007According to the conventional signature circuit, the first signature information is read out by setting the word line selection signals X0 through Xn and Xn+2 to low levels and the word line selection signal Xn+1 to a high level, and successively selecting the bit lines b0 through bn. Similarly, the second signature information is read out by setting the word line selection signals X0 through Xn and Xn+1 to low levels and the word line selection signal Xn+2 to a high level, and successively selecting the bit lines b0 through bn.
0008Therefore, the conventional signature circuit requires a number of word lines exclusively for the signature circuit, where this number is equal to the number of signature information to be stored. In the example shown in FIG.1, two word lines Xn+1 and Xn+2 are provided exclusively for the signature circuit because the first and second signature information are to be stored. Accordingly, the number of word lines provided exclusively for the signature circuit increases with the number of signature information to be stored, and there is a problem in that a large area is occupied by the word lines and related interconnections.
SUMMARY OF THE INVENTION
0009Accordingly, it is a general object of the present invention to provide a novel and useful signature circuit in which the problem described above is eliminated.
0010Another and more specific object of the present invention is to provide a signature circuit for storing signature information indicative of one of a plurality of device functions of a non-volatile memory device which includes first memory cells which are respectively coupled to one of a plurality of word lines and to one of a plurality of bit lines, comprising second memory cells which are respectively connected to the bit lines which are grouped into a plurality of blocks, at least one predetermined word line which is provided exclusively for the second memory cells and is connected to each of the memory cells, and selecting means coupled to the bit lines for selecting one of the blocks, where the second memory cells in each of the blocks store one kind of signature information, so that a number of blocks is equal to a number of kinds of signature information that can be stored in the signature circuit. According to the signature circuit of the present invention, the number of word lines required exclusively for storing the signature information can can be minimized, and the area occupied by the signature circuit can be minimized.
0011Other objects and further features of the present invention will be apparent from the following detailed description when read in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
0012<ul id="ul0001" list-style="none"><li>FIG.1 is a system block diagram showing a general construction of a PROM provided with an example of a conventional signature circuit;</li><li>FIG.2 is a circuit diagram showing an essential part of the PROM shown in FIG.1;</li><li>FIG.3 is a system block diagram showing a general construction of a PROM to which a first embodiment of a signature circuit according to the present invention is applied;</li><li>FIG.4 is a circuit diagram showing the first embodiment of the signature circuit according to the present invention;</li><li>FIG.5 is a circuit diagram showing an address buffer circuit of the PROM shown in FIG.3;</li><li>FIG.6 is a system block diagram showing a general construction of a PROM to which a second embodiment of the signature circuit according to the present invention is applied; and</li><li>FIG.7 is a circuit diagram showing the second embodiment of the signature circuit according to the present invention.</li></ul>
DESCRIPTION OF THE PREFERRED EMBODIMENTS
0013FIG.3 generally shows a PROM to which a first embodiment of a signature circuit according to the present invention may be applied. The PROM shown in FIG.3 includes a memory cell array 11, a row decoder 12, a column decoder 13, a sense amplifier 14 and a bus line selection circuit 15.
0014FIG.4 shows an essential part of the first embodiment together with related parts of the PROM shown in FIG.3. In this embodiment, it is assumed for the same of convenience that two kinds of signature information are to be stored. For this reason, bit lines b₀ through b<sub>2m+1</sub> are divided into two blocks.
0015The bit lines b₀ through b<sub>m</sub> are connected to a bus line BUS1 via respective FETs Q₀ through Q<sub>m</sub> which receive corresponding bit line selection signals Y₀ through Y<sub>m</sub>. The bit lines b<sub>m+1</sub> through b<sub>2m+1</sub> are connected to a bus line BUS2 via respective FETs Q<sub>m+1</sub> through Q<sub>2m+1</sub> which receive the corresponding bit line selection signals Y₀ through Y<sub>m</sub>. The bus lines BUS1 and BUS2 are connected to the sense amplifier 14 via respective n-channel FETs Q<sub>x</sub> and Q<sub>x+1</sub> and a bus line BUS3. The FETs Q<sub>x</sub> and Q<sub>x+1</sub> respectively receive bus line selection signals Z₀ and Z₁.
0016Memory cells MS₁ through MS<sub>2m+1</sub> for storing information are connected to word lines W₀ through W<sub>n</sub> which respectively receive word line selection signals X₀ through X<sub>n</sub>. ROM cells SS₀ through SS<sub>2m+1</sub> for storing first and second signature information are connected to a word line W<sub>n+1</sub> which receives a word line selection signal X<sub>n+1</sub>. The first signature information is stored in the ROM cells SS₀ through SS<sub>m</sub> which correspond to the bit lines b₀ through b<sub>m</sub>, and the second signature information is stored in the ROM cells SS<sub>m+1</sub> through SS<sub>2m+1</sub> which correspond to the bit lines b<sub>m+1</sub> through b<sub>2m+1</sub>.
0017When reading the first signature information, only the word line selection signal X<sub>n+1</sub> out of the word line selection signals X₀ through X<sub>n+1</sub> is set to a high level in response to an address signal, and the other word line selection signals are set to low levels. In addition, only the bus line selection signal Z₀ is set to a high level in response to the address signal, and the other bus line selection signal Z₁ is set to a low level. As a result, the FET Q<sub>x</sub> is turned ON, and the first signature information is read out from the ROM cells SS₀ through SS<sub>m</sub> by successively selecting the bit lines b₀ through b<sub>m</sub> by the bit line selection signals Y₀ through Y<sub>m</sub>.
0018Similarly, when reading the second signature information, only the word line selection signal X<sub>n+1</sub> out of the word line selection signals X₀ through X<sub>n+1</sub> is set to the high level in response to the address signal, and the other word line selection signals are set to the low levels. In addition, only the bus line selection signal Z₁ is set to the high level in response to the address signal, and the other bus line selection signal Z₀ is set to the low level. As a result, the FET Q<sub>x+1</sub> is turned ON, and the second signature information is read out from the ROM cells SS<sub>m+1</sub> through SS<sub>2m+1</sub> by successively selecting the bit lines b<sub>m+1</sub> through b<sub>2m+1</sub> by the bit line selection signals Y<sub>m+1</sub> through Y<sub>2m+1</sub>.
0019The bus line selection signals Z₀ and Z₁ are generated by an address buffer circuit 19 shown in FIG.5. A signal PD which has a high level in a standby mode is applied to a terminal 20, and an address signal A<sub>in</sub> for setting one of the bus line selection signals Z₀ and Z₁ to a high level is applied to a terminal 21 during a memory access mode. The signals PD and A<sub>in</sub> are supplied to a NOR circuit 22, and an output signal of the NOR circuit 22 is supplied to a buffer part 25 via inverters 23 and 24.
0020The buffer part 25 includes p-channel FETs P1 through P3 and n-channel FETs N1 through N3. The buffer part 25 receives a low-level signal A and a high-level signal B in the memory access mode. Hence, the output signal of the inverter 24 is inverted by an inverter which is made up of the FETs P1 and N1 and is thereafter supplied to a terminal 27 via an inverter 26. On the other hand, the output signal of the inverter of the buffer part 25 is supplied to a terminal 30 via inverters 28 and 29. The bus line selection signal Z₀ is output from the terminal 27, and the bus line selection signal Z₁ is output from the terminal 30.
0021When reading the first signature information, the signals A and B are both set to the high level to turn OFF the FETs P2 and P3 and turn ON the FETs N2 and N3. Thus, the bus line selection signal Z₀ has a high level and the bus line selection signal Z₁ has a low level in this case.
0022When reading the second signature information, the signals A and B are both set to the low level to turn ON the FETs P2 and P3 and turn OFF the FETs N2 and N3. Thus, the bus line selection signal Z₀ has a low level and the bus line selection signal Z₁ has a high level in this case.
0023Therefore, in this embodiment, two signature information are stored in the ROM cells which are connected to the single word line W<sub>n+1</sub>, and the desired signature information is read out by selecting this word line W<sub>n+1</sub> and selecting one bit line block by the bus line selection signals Z₀ and Z₁. Hence, only one word line is required exclusively for the signature circuit, and the area occupied by the signature circuit can be reduced effectively.
0024Of course, the number of signature information which can be stored is not limited to two, and more than two signature information can be stored using the single word line W<sub>n+1</sub>. On the other hand, it is also possible to provide more than one word line for the signature circuit. In other words, the important thing is to store a plurality of signature information using one word line.
0025Next, a description will be given of a second embodiment of the signature circuit according to the present invention.
0026FIG.6 generally shows a PROM to which the second embodiment of the signature circuit according to the present invention may be applied. In FIG.6, those parts which are the same as those corresponding parts in FIG.3 are designated by the same reference numerals, and a description thereof will be omitted.
0027FIG.7 shows an essential part of the second embodiment together with related parts of the PROM shown in FIG.6. In this embodiment, the bit lines b₀ through b<sub>2m+1</sub> are divided into a pair of sub-blocks, and a plurality of such pairs of sub-blocks are provided. Pairs of bus lines BUS1a and BUS2a, ..., and BUS1x and BUS2x are respectively connected to bus lines BUS3a, ..., and BUS3x via the FETs Q<sub>1a</sub> and Q<sub>2a</sub>, ..., and Q<sub>1x</sub> and Q<sub>2x</sub> which respectively receive the bus line selection signals Z₀ and Z₁. In addition, FETs T1a and T2a, ..., and T1x and T2x are respectively connected to the pairs of bus lines BUS1a and BUS2a, ..., and BUS1x and BUS2x as the ROM cells for storing the signature information. The bus lines BUS3a through BUS3x are connected to the sense amplifier 14 via respective FETs Q<sub>3a</sub> through Q<sub>3x</sub> and a bus line BUS4. The FETs Q<sub>3a</sub> through Q<sub>3x</sub> respectively receive bus line selection signals Z₂ and Z₃.
0028The gates of the FETs T1a and T2a, ..., and T1x and T2x for storing the signature information are respectively connected to the word line X<sub>n+1</sub>. The signature information is stored by forming a short-circuit or an open circuit between the drains of the FETs T1a and T2a, ..., and T1x and T2x and the corresponding one of the bus lines BUS1a and BUS2a, ..., and BUS1x and BUS2x. The short-circuit is indicated by a mark "o" while the open circuit is indicated by a mark "x". In this embodiment, the first signature information is stored in the FETs T1a through T1x which correspond to the bus line selection signal Z₀, and the second signature information is stored in the FETs T2a through T2x which correspond to the bus line selection signal Z₁.
0029When reading the first signature information, only the word line X<sub>n+1</sub> is set to the high level in response to the address signal, and only the bus line selection signal Z₀ is set to the high level to select a first block. The first block is made up of one of the sub-blocks from each of the pairs of sub-blocks. Hence, the FETs Q<sub>ix</sub> are turned ON, and the first signature information is read by successively selecting the bus lines BUS3a through BUS3x by the bus line selection signals Z₂ and Z₃ and successively selecting the bit lines. Similarly, when reading the second signature information, only the word line X<sub>n+1</sub> is set to the high level in response to the address signal, and only the bus line selection signal Z₁ is set to the high level to select a second block. The second block is made up of the other of the sub-blocks from each of the pairs of sub-blocks. Hence, the FETs Q<sub>ia</sub> are turned ON, and the second signature information is read by successively selecting the bus lines BUS3a through BUS3x by the bus line selection signals Z₂ and Z₃ and successively selecting the bit lines.
0030Therefore, in this embodiment, a plurality signature information are stored in the ROM cells which are connected to the single word line W<sub>n+1</sub>, and the desired signature information is read out by selecting this word line W<sub>n+1</sub> and selecting the bit line blocks by the bus line selection signals Z₀ and Z₁. Hence, only one word line is required exclusively for the signature circuit, and the area occupied by the signature circuit can be reduced effectively.
0031It is also possible to provide more than one word line for the signature circuit. In other words, the important thing is to store a plurality of signature information using one word line, similarly as in the case of the first embodiment.
0032In addition, the word line X<sub>n+1</sub> and the ROM cells (T1a, T1x, etc.) are provided between the column decoder 13 and the sense amplifier 14 in FIG.6 and does not form a part of the memory cell array 11. However, the word line X<sub>n+1</sub> and the ROM cells may of course form a part of the memory cell array 11 as in the case of the first embodiment by providing necessary interconnections between the ROM cells and the circuit part which is located between the column decoder 13 and the sense amplifier 14.
0033Further, the present invention is not limited to these embodiments, but various variations and modifications may be made without departing from the scope of the present invention.
Contents4
5 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| EP0708446A2 | Cited by | European Patent Office (EPO) | Search report |
| WO2004021361A3 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| WO2004021361A3 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| EP0708446A3 | Cited by | European Patent Office (EPO) | Search report |
| US6738286B2 | Cited by | United States of America | Applicant |
| US7139195B2 | Cited by | United States of America | Applicant |
| EP1253598A2 | Cited by | European Patent Office (EPO) | Search report |
| WO2004021361A2 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| FR2831315A1 | Cited by | France | Search report |
| EP1253598A3 | Cited by | European Patent Office (EPO) | Search report |
| EP0116464A2 | Cites | European Patent Office (EPO) | Search report |
| US4055802A | Cites | United States of America | Search report |
| US4266283A | Cites | United States of America | Examiner |
4 priority claims, no other members on record
Priority claims4
| Document | Office | Kind | Date |
|---|---|---|---|
| 3758290 | Japan | A | |
| 3758290 | Japan | – | |
| JP19900037582 | – | – | – |
| 3758290 | – | – | – |
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Numbers
- Publication
- 0443775
- Publication, DOCDB
- 0443775
- Publication, EPODOC
- EP0443775
- Application
- 91301196
- Application, DOCDB
- 91301196
- Application, EPODOC
- EP19910301196
Titles6
- German
- Kennzeichenschaltung für nichtflüchtige Speicheranordnung.
- English
- Signature circuit for non-volatile memory device.
- French
- Circuit de signature pour un dispositif de mémoire non-volatile.
- German
- Kennzeichenschaltung für nichtflüchtige Speicheranordnung
- English
- Signature circuit for non-volatile memory device
- French
- Circuit de signature pour un dispositif de mémoire non-volatile
Classification
- CPC, 2
- G11C16/20
- G11C5/00
- IPC, 3
- G11C17 00
- G11C5 00
- G11C16 20
Designated states3
- Contracting states, 3
- Germany
- France
- United Kingdom