INTERNAL SIGNAL MONITORING CIRCUIT
20220050737 ยท 2022-02-17
Assignee
Inventors
Cpc classification
G11C29/24
PHYSICS
G06F11/3075
PHYSICS
G11C7/227
PHYSICS
G06F11/076
PHYSICS
G11C11/4093
PHYSICS
G06F11/0772
PHYSICS
G06F11/0757
PHYSICS
G11C7/222
PHYSICS
G11C29/08
PHYSICS
International classification
G06F11/07
PHYSICS
G11C7/10
PHYSICS
Abstract
Disclosed herein is an apparatus that includes a first circuit configured to measure a first time period from a first active edge of one of plurality of internal signals to a second active edge of one of the plurality of internal signals, and a second circuit configured to compare the first time period with a second time period to generate an alert signal.
Claims
1. An apparatus comprising: a first circuit configured to measure a first time period from a first active edge of one of plurality of internal signals to a second active edge of one of the plurality of internal signals; and a second circuit configured to compare the first time period with a second time period to generate an alert signal.
2. The apparatus of claim 1, further comprising a third circuit configured to store an alert signal, wherein the alert signal is output to outside in response to a first command issued from outside.
3. The apparatus of claim 2, wherein the third circuit includes a mode register circuit, and wherein the first command is a mode register read command.
4. The apparatus of claim 1, wherein the first active edge is an edge of a first internal signal among the plurality of internal signals, and wherein the second active edge is an edge of a second internal signal different from the first internal signal among the plurality of internal signals.
5. The apparatus of claim 4, wherein the second circuit is configured to activate the alert signal When the first time period is longer than the second time period.
6. The apparatus of claim 5, wherein the first and second internal signals are generated in response to a second command issued from outside.
7. The apparatus of claim 6, wherein the second command is an active command, and wherein the first and second internal signals are ones of row-system signals sequentially generated based on the active command.
8. The apparatus of claim 4, wherein the second circuit is configured to activate the alert signal when the first time period is shorter than the second time period.
9. The apparatus of claim 8, wherein the first and second internal signals are generated in response to second and third commands, respectively, issued from outside.
10. The apparatus of claim 9, wherein the second command is an active command, wherein the third command is a read command or a write command, wherein the first internal signal is one of row-system signals generated based on the active command, and wherein the second internal signal is one of column-system signals generated based on the read command or the write command.
11. The apparatus of claim 1, wherein the first circuit is configured to start a counting operation in response to the first active edge and stop the counting operation in response to the second active edge to generate a first binary data indicating the first time period.
12. The apparatus of claim 11, wherein the second circuit is configured to compare the first binary data with a second binary data indicating the second time period.
13. The apparatus of claim 12, further comprising a fourth circuit configured to non-volatilely store the second binary data.
14. The apparatus of claim 1, wherein the first and second circuits are activated during an initial sequence performed at a power on.
15. An apparatus comprising: an oscillator circuit configured to generate an oscillation signal; a counter circuit configured to start a counting operation in synchronization with the oscillation signal in response to a first internal signal and stop the counting operation in response to a second internal signal to generate a count value; and a comparator circuit configured to compare the count value and a threshold value and activate an alert signal when the count value exceeds the threshold value.
16. The apparatus of claim 15, further comprising a mode register circuit configured to store the alert signal.
17. The apparatus claim 15, further comprising a fuse circuit configured to non-volatilely sure the threshold value.
18. The apparatus of claim 15, wherein the counter circuit and comparator circuit are activated during an initial sequence performed at a power on.
19. An apparatus comprising: a memory cell array including a plurality of memory cells; an access control circuit configured to perform an access operation to the memory cell array using first and second signals sequentially activated; a signal monitor circuit configured to evaluate a time period from when the first signal is activated to when the second signal is activated and generate an alert signal when the time period is an aberrant value; a mode register circuit configured to store the alert signal; and an I/O circuit coupled to the memory cell array and the mode register circuit, wherein the access control circuit is configured to perform, in response to a data read command, a data read operation to the memory cell array so that a read data stored in one of the memory cells is output to outside through the I/O circuit and perform, in response to a mode register read command, a mode register read operation to the mode register circuit so that the alert signal is output to outside through the I/O circuit.
20. The apparatus of claim 19, wherein the signal monitor circuit is activated during an initial sequence performed at a power on.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0010] Various embodiments of the present invention will be explained below in detail with reference to the accompanying drawings. The following detailed description refers to the accompanying drawings that show, by way of illustration, specific aspects and embodiments in which the present invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the present invention. Other embodiments may be utilized, and structural, logical and electrical changes may be made without departing from the scope of the present invention. The various embodiments disclosed herein are not necessary mutually exclusive, as some disclosed embodiments can be combined with one or more other disclosed embodiments to form new embodiments.
[0011] A semiconductor device shown in
[0012] The row address decoder 21 predecodes the row address XADD supplied from outside, thereby generating a mat selection signal MAT, a main-word-line selection signal MW, and sub-word-line selection signals FXT and FXB. The access control circuit 20 further includes a main word driver 24 and a sub word driver 25. The mat selection signal MAT and the main-word-line selection signal MW are supplied to the main word driver 24. The main word driver 24 drives a main word signal MWLB based on the mat selection signal MAT and the main-word-line selection signal MW. The sub word driver 25 drives the sub word lines SWL based on the main word signal MWLB and the sub-word-line selection signals FXT and FXB.
[0013] The column address decoder 22 decodes the column address YADD supplied from outside so as to generate a column selection signal CS. The column selection signal CS is supplied to a data sense circuit 26 included in the access control circuit 20. The data sense circuit 26 is connected to the bit lines BL, and any of the bit lines BL which is indicated by the column selection signal CS is connected to the I/O circuit 30.
[0014] The command decoder 23 decodes the command CMD issued from outside so as to generate various internal control signals. For example, the command decoder 23 activates an active signal IACT in a case where the command CMD indicates an active command, activates a column enable signal CYE in a case where the command CMD indicates a read command or a write command, and activates a mode register read signal MRR in a case where the command CMU indicates a mode register read command. The active signal IACT is supplied to a timing control circuit 27 included in the access control circuit 20. The timing control circuit 27 activates timing signals R1 and R2 in this order when the active signal IACT is activated. The timing signals R1 and R2 are supplied to the main word driver 24. The column enable signal CYE is supplied to the column address decoder 22. The column address decoder 22 activates the column selection signal CS in response to the column enable signal CYE. The activate signal TACT and the timing signals R1 and R2 may be considered as row-system signals, which are related to accessing a main or sub word line. The column enable signal CYE may be considered as a column-system signal, which is related to accessing hit lines BL. The mode register read signal MRR is supplied to a mode register 40. The mode register 40 is a circuit that stores various operation parameters therein. When the mode register read signal MRR is activated, the parameters stored in the mode register 40 are output to outside via the I/O circuit 30. The parameters stored in the mode register 40 can be overwritten from outside via the I/O circuit 30.
[0015] The semiconductor device according to the present embodiment further includes a signal monitor circuit 50. The signal monitor circuit 50 is a circuit for evaluating activation timings of various internal signals of the semiconductor device. In the example shown in
[0016] As shown in
[0017] The logic circuit 241 sets the output signal 241a at a low level when the mat selection signal MAT is activated to a high level in a period in which both the timing signals R1 and R2 are at a high level, thereby turning on a P-channel MOS transistor P10 included in the selection circuit 242. A boosted potential VPP is supplied to a source of the transistor VPP, and thus when the transistor P10 is turned on, an internal node f is pre-charged to the boosted potential VPP. Thereafter, when at least one of the timing signals R1 and R2 is changed to a low level, the transistor P10 is set in an off-state. In this state, when the main-word-line selection signal MW becomes a high level and both the timing signals R1 and R2 are changed to be a low level, N-channel MOS transistors N11 and N12 both included in the selection circuit 42 are turned on. Therefore, the internal node f is discharged to a level VSS. As a result, the main word signal MWLB output from the output circuit 243 is activated to a potential VSS. On the other hand, when the main-word-line selection signal MW remains at a low level, the internal node f is maintained at a level VPP, and thus the main word signal MWLB remains in a deactivated state at the boosted potential VPP.
[0018] As shown in
[0019] With this configuration, when the main word signal MWLB is activated to a low level (a level VSS) while the sub-word-line selection signals FXT and FXB are at a level VPP and the level VSS, respectively, the sub word line SWL is driven to the level VPP via the transistor P20. Accordingly, read data is read out from a memory cell MC connected to that sub word line SWL via a corresponding bit line BL. On the other hand, in a case where the main word signal MWLB is deactivated at a high level (the level VPP) even while the sub-word-line selection signals FXB and FXB are at the level VPP and the level VSS, respectively, the sub word line SWL is deactivated to a level VKK by the transistor N21.
[0020] As shown in
[0021] The local I/O line pair LIO is connected to the I/O circuit 30 via a main I/O line pair MIO. The main I/O line pair MIO includes complementary main I/O lines MIOT and MIOB. In a read operation, read data read out from the memory cell array 10 is transferred to the I/O circuit 30 via the local I/O line pair LIO and the main I/O line pair MIO. In a write operation, write data supplied from outside is transferred to the local I/O line pair LIP via the 110 circuit 30 and the main I/O line pair MIO. A driver circuit 263 is provided between the main I/O line MIOT and the local I/O line LIOT, and a driver circuit 264 is provided between the main I/O line MIOB and the local 110 line LIOB. The driver circuits 263 and 264 have a function of driving the local I/O line pair LIO in a write operation.
[0022] As shown in
[0023] The counter circuit 502 starts a counting operation that is synchronized with the oscillation signal USC in response to a start signal STR, and stops the counting operation in response to a stop signal SIP The start signal STR and the stop signal SIP are internal signals having a critical timing difference therebetween. For example, assuming that the active signal IACT is the start signal SIR and the timing signal R2 is the stop signal STP, it is possible to evaluate a time from activation of the active signal IACT to activation of the main word signal MWLB. In this case, when the active signal IACT is activated at a time t10 shown in
[0024] Alternatively, when the timing signal R2 is assumed as the start signal STR and the column enable signal CYE is assumed as the stop signal STP, it is possible to evaluate a time from activation of the main word signal MWLB to a power on of the column switch 262. In this case, when the timing signal R2 is activated at a time t20 shown in
[0025] The alert signal ALT is stored in the mode register 40. Therefore, the alert signal ALT can be read out o outside via the I/O circuit 30 by issuing a mode register read command from outside.
[0026] It is possible that evaluation using the signal monitor circuit 50 employs an internal signal generated in actual access. However, there is less necessity for frequently performing evaluation using the signal monitor circuit 50, because the signal monitor circuit 50 detects age deterioration caused by long-time use. Therefore, as shown in
[0027] The internal signal input to the signal monitor circuit 50 may be a signal used in actual access or a replica of the signal used in actual access. For example, as shown in
[0028] Although this invention has been disclosed in the context of certain preferred embodiments and examples, it will be understood by those skilled in the art that the inventions extend beyond the specifically disclosed embodiments to other alternative embodiments and/or uses of the inventions and obvious modifications and equivalents thereof. In addition, other modifications which are within the scope of this invention will be readily apparent to those of skill in the art based on this disclosure. It is also contemplated that various combination or sub-combination of the specific features and aspects of the embodiments may be made and still fall within the scope of the inventions. It should be understood that various features and aspects of the disclosed embodiments can be combined with or substituted for one another in order to form varying mode of the disclosed invention. Thus, it is intended that the scope of at least some of the present invention herein disclosed should not be limited by the particular disclosed embodiments described above.