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Memory device with dual timing and signal latching control    
United States Patent6032220   
Link to this pagehttp://www.wikipatents.com/6032220.html
Inventor(s)Martin; Chris G. (Boise, ID); Manning; Troy A. (Boise, ID)
AbstractIn a packetized memory device, pipelined row and column address paths receive row and column addresses from an address capture circuit. Each of the row and column address paths includes a respective address latch that latches the row or column address from the address capture circuitry, thereby freeing the address capture circuitry to capture a subsequent address. The column path also includes a set of bank address latches so that bank addresses can be pipelined synchronously with column addresses. The latched row and column addresses are then provided to a combining circuit. Additionally, redundant row and column circuits receive these latched addresses and indicate to the combining circuit whether or not to substitute a redundant row. The combining circuit, responsive to a strobe then transfers the redundant row address or latched row address to a decoder to activate the array. The bank address latches also activate a selected bank responsive to the strobe.



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Drawing from US Patent 6032220
Memory device with dual timing and signal latching control - US Patent 6032220 Drawing
Memory device with dual timing and signal latching control
Inventor     Martin; Chris G. (Boise, ID); Manning; Troy A. (Boise, ID)
Owner/Assignee     Micron Technology, Inc. (Boise, ID)
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Publication Date     February 29, 2000
Application Number     08/896,405
PAIR File History     Application Data   Transaction History
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Filing Date     July 18, 1997
US Classification    
Int'l Classification    
Examiner     Lane; Jack A.
Assistant Examiner    
Attorney/Law Firm     Dorsey & Whitney LLP
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Patent Tags     memory dual timing signal latching control
   
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5870350
Bertin
365/233
Feb,1999

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5841731
Shinozaki
365/233
Nov,1998

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5825711
Manning
365/230.03
Oct,1998

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Pinkham
365/230.03
Jul,1998

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Yamazaki
365/230.03
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Lee

Jun,1998

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Williams

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Schaefer
365/230.03
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Merritt
365/230.06
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Pelley, III
365/233.5
Jun,1994

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Yanai
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Morton
365/230.06
Oct,1992

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Brent

Dec,1991

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We claim:

1. A method of transferring data to or from one of a plurality of memory banks of an array in a memory device, the method comprising:

receiving a command at the memory device;

producing a global signal responsive to the command at a global signal generator;

receiving an address at the memory device;

transmitting the global signal from the global signal generator to a latching circuit;

latching the address at the latching circuit responsive to the global signal;

selecting a bank responsive to the address;

transmitting the global signal from the global signal generator to a local signal generator coupled to the selected bank, a respective local signal generator being provided for each of the banks;

producing a plurality of local control signals at the local signal generator responsive to the global signal; and

activating the selected bank responsive to the latched address and the local control signals.

2. The method of claim 1, further comprising latching redundancy information responsive to the global signal.

3. The method of claim 2, further comprising selectively gating address or redundancy information to the local control circuit responsive to the global signal.

4. The method of claim 3, further comprising latching the gated address or redundancy information at the local control circuit.

5. The method of claim 1 wherein the address includes bank address information, and wherein the act of producing a global control signal includes producing a bank-specific global control signal corresponding to the bank address information.

6. The method of claim 5, further comprising gating address, redundancy information or control signals to the local control circuit responsive to the bank-specific global signals.

7. A method of producing a set of signals for accessing banks of a memory array in a memory device, comprising the steps of:

receiving a command at the memory device;

receiving address information at the memory device, the address information being indicative of a selected bank;

identifying the selected bank responsive to the address information;

producing a first global signal responsive to the command and the identified selected bank at a global signal generator;

transmitting the first global signal from the global signal generator to a local circuit coupled to the identified selected bank, a respective local signal generator being provided for each of the banks;

generating a first plurality of control signals at the local circuit responsive to the first global signal, the first plurality of control signals including at least a control signal to equilibrate the identified selected bank and a control signal to activate sense amplifiers in the identified selected bank;

transmitting the first global signal from the global signal generator to a latch coupled to the identified selected bank;

latching an additional signal with the latch responsive to the first global signal; and

applying the first plurality of control signals and the latched additional signal to the identified selected bank.

8. The method of claim 7, further comprising:

producing a second global signal at the global signal generator, the second global signal being delayed relative to the first global signal by an expected response time of the bank;

transmitting the second global signal from the global signal generator to the local circuit;

generating a second plurality of control signals at the local circuit responsive to the second global signal; and

applying the second plurality of control signals to the identified selected bank.

9. A method of accessing a selected bank of a memory array in a memory device, the array having a plurality of banks, comprising the steps of:

generating a first control signal;

generating a row activation signal corresponding to the selected bank at a first location in the memory device;

transmitting the row activation signal from the first location to a local circuit coupled to the selected bank, a respective local circuit being provided for each of the banks;

receiving the row activation signal at the local circuit;

producing a plurality of local control signals at the local circuit in response to the row activation signal, each of the local control signals having a respective transition following the row activation signal by a time defined by the local circuit and corresponding to a respective response time of the selected bank;

transmitting the row activation signal to a latch coupled to the selected bank;

latching the first control signal with the latch in response to the row activation signal; and

accessing the selected bank in response to the local control signals and the latched first control signal.

10. The method of claim 9, further comprisings:

generating a second control signal; and

latching a second signal in response to the row activation signal.

11. The method of claim 10 wherein the latching of a first signal in response to the row activation signal includes closing a first switching circuit in response to the row activation signal and wherein the latching of a second signal in response to the row activation signal includes closing a second switching circuit in response to the row activation signal.

12. The method of claim 9, further comprising latching a first set of addressing data in response to the row activation signal.

13. The method of claim 12 wherein the first set of addressing data includes bank control data.

14. The method of claim 12 wherein the first set of addressing data includes redundancy information.

15. The method of claim 12 wherein the first set of addressing data includes bank control data.

16. The method of claim 12, further comprising latching a second set of addressing data in response to the row activation signal.

17. The method of claim 12 wherein the first set of addressing data includes bank control data and the second set of addressing information includes redundancy information.

18. A method of accessing one or more selected locations in a memory device, comprising:

transmitting a first command to the memory device;

transmitting a first set of addressing data to the memory device, an addressing data including addressing information identifying a first selected bank;

generating a first signal responsive to the first command and the addressing information identifying the first selected bank;

latching a portion of the first set of addressing data responsive to the first signal;

generating a first set of selected control signals in a local signal generator responsive to the first signal, a respective local signal generator being provided for each of the banks; and

accessing the first selected bank in response to the latched portion of the addressing data and the first set of selected control signals.

19. The method of claim 18 wherein generating a first signal responsive to the first command and the first set of addressing data comprises:

generating a global signal responsive to the first command; and

directing the global signal along a selected path toward the selected bank to form the first signal.

20. The method of claim 18, further comprising:

transmitting a second command to the memory device;

transmitting a second set of addressing data to the memory device, the second set of addressing data including addressing information identifying a second selected bank;

generating a second signal responsive to the second command and the addressing information identifying a second selected bank;

latching a portion of the second set of addressing data responsive to the second signal while generating a first set of control signals responsive to the first signal;

generating a second set of control signals responsive to the second signal; and

accessing the second bank in response to the latched portion of the second set of addressing data.

21. The method of claim 20 wherein the selected location accessed in response to the latched portion of the second set of addressing data is further responsive to the second set of control signals.

22. The method of claim 20 wherein the generating of a first signal responsive to the first command and the first set of addressing data comprises:

generating a first primary signal responsive to the first command; and

directing the first primary signal along a selected path toward the first selected bank to form the first signal.

23. The method of claim 22 wherein the generating of a second signal responsive to the second command and the second set of addressing data comprises:

generating a second primary signal responsive to the second command; and

directing the second primary signal along a selected path toward the second bank to form the second signal.

24. An address control circuit for a memory device having a plurality of banks, the memory device receiving a signal including a first command, a first address and a first bank address comprising:

a first address capture circuit adapted to capture the first address and the bank address, the first address capture circuit having a first expected address capture interval;

a global signal generator configured to produce a plurality of first global signals at respective global signal outputs responsive to the first command after the first expected address capture interval;

a first address latch having a first latch input coupled to the first address capture circuit, and a first address output, the first latch circuit being responsive to any of the first global signals at the first latch input to latch the first address from the first address capture circuit;

a plurality of respective local control circuits provided for the plurality of memory banks, each of the local control circuits having a timing control input coupled to a respective output of the global signal generator and being responsive to the respective first global signal to produce a plurality of local signals at respective local signal outputs, the plurality of local signals being coupled to the respective memory bank; and

a first address decoder having a first address input coupled to the first address output, a decoder output adapted for coupling to a memory bank and a decoder control input coupled to a selected one of the local signal outputs.

25. The address control circuit of claim 24, wherein the global signal generator is configured to produce a second global signal, further comprising:

a command latching circuit coupled between the first local timing circuit and the global signal generator, the command latching circuit being responsive to the first global signal to latch the second global signal.

26. The address control circuit of claim 24, further comprising:

a gating circuit having a control input coupled to the global signal generator and, a signal input adapted to receive an input signal, and signal output coupled to the memory bank, the gating circuit being responsive to the first global signal to couple the signal input to the signal output.

27. The address control circuit of claim 26, further comprising a local latch coupled between the gating circuit and the memory bank.

28. The address control circuit of claim 24, further comprising:

a redundant detect circuit coupled between the first address latch and the first address decoder, the redundant circuit having a redundant input coupled to the first address output and a redundant output; and

a second address latch coupled between the redundant detect circuit and the first address decoder, the second address latch including a second address input coupled to the redundant output and a second address output coupled to the first address decoder, the second address latch being responsive to a second latch signal to latch data from the redundant detect circuit.

29. The address path of claim 24 wherein the received signal includes a second address, further comprising:

a second address capture circuit adapted to capture the second address, the second address capture circuit having a second expected address capture interval;

a second address latch having a second latch input coupled to the second address capture circuit, a second latch input coupled to the global signal generator, and a second address output, the second latch circuit being responsive to the first global signal at the second latch input to latch the second address from the second address capture circuit; and

a second address decoder having a second address input coupled to the second address output.

30. The address path of claim 24 wherein the memory device is a packetized memory device having a command data input adapted to receive the signal including the first address, further comprising a command latch coupled to the command data input.

31. A packetized memory device, comprising:

a memory array including a plurality of banks;

an address capture circuit adapted for coupling to a first external bus and operative to capture address information from the first external bus;

a command buffer having a command input adapted for coupling to a second external bus and a signal output, the command buffer being operative to capture a command from the second external bus and to produce a first global signal at the signal output in response thereto;

a switching circuit having a switching circuit signal input coupled to the signal output, a switching input coupled to the address capture circuit, and a plurality of switching outputs, the switching circuit being responsive to a first portion of the captured address information at the switching input to couple the switching circuit signal input to a selected one of the switching outputs;

an address latch coupled to the address capture circuit and configured to latch a second portion of the captured address information; and

a plurality of local circuits, each coupled to a respective one of the banks, each of the local circuits including a signal input coupled to a respective one of the switching outputs, each of the local circuits further including a local latch having a latching input coupled to the respective switching output and a control signal input, each of the local latches being responsive to receipt of the first global signal at the respective latching input to latch a control signal at the control signal input and to apply a plurality of control signals to a respective bank.

32. The memory device of claim 31, further comprising:

data transfer circuitry coupled between each of the banks and the respective local control circuits, wherein each of the local circuits is responsive to receipt of the first global signal to provide a set of control signals to the respective bank.

33. The memory device of claim 32, further comprising address decoder coupled between the address latches and the data transfer circuitry.

34. The memory device of claim 33, further comprising redundant detect circuits coupled between the address latch and the address decoders.

35. The memory device of claim 31, wherein the first and second busses are the same bus.

36. A packetized memory device, comprising:

a memory array including a plurality of banks;

a command latch having an input terminal adapted to receive command packets including a bank address and command words;

command processing circuitry coupled to the command latch, the command processing circuitry being structured to produce command signals in response to the command words;

an address capture circuit configured to capture the bank address from the command packets;

a global signal generator having a first generator input coupled to the command processing circuitry, a second generator input coupled to the address capture circuit, and a plurality of global signal outputs corresponding in number to the number of banks, the global signal generator being operable to produce a respective bank-specific global signal at a respective global signal output in response to the command signals and the captured bank address;

a plurality of local latches corresponding to each of the banks, each local latch having a latching input coupled to the respective global signal output and a latch signal input adapted to receive signals directed to the corresponding bank, and a latch signal output; and

a respective local circuit for each of the banks, each of the local circuits having a first input coupled to a respective global signal output of the global signal generator, a second input coupled to the latch signal output, and a local signal output coupled to the corresponding bank, each of the local circuits being responsive to the respective bank-specific global signal and the signals directed toward the corresponding bank to access the corresponding bank.

37. The memory device of claim 36 wherein the global signal generator comprises:

a signal source responsive to produce a general global signal; and

a switching circuit responsive to the captured bank address to direct the general global signal to global signal output indicated by the captured bank address.

38. The memory device of claim 37 wherein the global signal generator includes:

a row model responsive to the general global signal to produce a sense signal delayed with respect to the bank-specific global signal, the row model having a model output coupled to the corresponding local circuit, wherein the local circuit is further responsive to both the sense signal and the bank-specific global signal to access the corresponding bank.

39. The memory device of claim 36, further comprising:

an address decoder coupled between the local circuit and the respective bank; and

a row or column address latch coupled to the address capture circuit, the row or column address latch including a latching input and being responsive to the general global signal to latch row or column address, the row or column latch being configured to provide the latched row or column address to the address decoder.

40. The memory device of claim 36, further comprising:

a redundant row or column detect circuit coupled between the row or column address latch and the address decoder.

41. A computer system, comprising:

a processor;

an input device coupled to the processor;

an output device coupled to the processor;

a storage device coupled to the processor;

a bus coupled to the processor; and

a memory device including:

a memory array including a plurality of banks;

a command latch having an input terminal adapted to receive command packets including a bank address and command words from the bus;

command processing circuitry coupled to the command latch, the command processing circuitry being structured to produce command signals in response to the command words;

an address capture circuit configured to capture the bank address from the bus;

a global signal generator having a first generator input coupled to the command processing circuitry, a second generator input coupled to the address capture circuit, and a plurality of global signal outputs corresponding in number to the number of banks, the global signal generator being responsive to produce a plurality of bank-specific global signals on respective outputs in response to the command signals and the captured bank address;

a plurality of local latches corresponding to each of the banks, each local latch having a latching input coupled to a respective output of the global signal generator and a latch signal input adapted to receive signals directed to the corresponding bank, and a latch signal output; and

a plurality of local circuits corresponding in number to the number of banks, each of the local circuits having a first input coupled to a respective output of the global signal generator, a second input coupled to the latch signal output, and a local signal output coupled to the corresponding bank, each of the local circuits being responsive to the bank-specific global signal and the signals directed toward the corresponding bank to access the corresponding bank.

42. The computer system of claim 41, wherein the global signal generator comprises:

a signal source responsive to produce a general global signal; and

a switching circuit responsive to the captured bank address to direct the general global signal to a respective global signal output corresponding to the bank indicated by the captured bank address.

43. The computer system of claim 41, wherein the global signal generator comprises:

a row model responsive to the general global signal to produce a sense signal delayed with respect to the bank-specific global signal, the row model having a model output coupled to the corresponding local circuit, wherein each of the local circuits is further responsive to both the sense signal and the bank-specific global signal to access the corresponding bank.

44. The computer system of claim 41, further comprising:

an address decoder coupled between the local circuit and the respective bank; and

a row or column address latch coupled to the address capture circuit, the row or column address latch including a latching input and being responsive to the general global signal to latch row or column address, the row or column latch being configured to provide the latched row or column address to the address decoder.

45. The computer system of claim 44, further comprising:

a redundant row or column detect circuit coupled between the row or column address latch and the address decoder.
 Description Submit all comments and votes
 


TECHNICAL FIELD

The present invention relates to integrated circuit devices, and more particularly, to synchronous memory devices.

BACKGROUND OF THE INVENTION

Conventional computer systems include a processor coupled to a variety of memory devices, including read-only memories ("ROMs") which traditionally store instructions for the processor, and a system memory to which the processor may write data and from which the processor may read data. The processor may also communicate with an external cache memory, which is generally a static random access memory ("SRAM"). The processor also communicates with input devices, output devices, and data storage devices.

Processors generally operate at a relatively high speed. Processors such as the Pentium.RTM. and Pentium Pro.RTM. microprocessors are currently available that operate at clock speeds of at least 200 MHz. However, the remaining components of the computer system, with the exception of SRAM cache memory, are not capable of operating at the speed of the processor. For this reason, the system memory devices, as well as the input devices, output devices, and data storage devices, are not coupled directly to the processor bus. Instead, the system memory devices are generally coupled to the processor bus through a memory controller, and the input devices, output devices, and data storage devices are coupled to the processor bus through a bus bridge. The memory controller allows the system memory devices to operate at a clock frequency that is substantially lower than the clock frequency of the processor. Similarly, the bus bridge allows the input devices, output devices, and data storage devices to operate at frequency that is a substantially lower than the clock frequency of the processor. Currently, for example, a processor having a 200 MHz clock frequency may be mounted on a mother board having a 66 MHz clock frequency for controlling the system memory devices and other components.

Access to system memory is a frequent operation for the processor. The time required for the processor, operating, for example, at 200 MHz, to read data from or write data to a system memory device operating at, for example, 66 MHz, greatly slows the rate at which the processor is able to accomplish its operations. Thus, much effort has been devoted to increasing the operating speed of system memory devices.

System memory devices are generally dynamic random access memories ("DRAMs"). Initially, DRAMs were asynchronous and thus did not operate at even the clock speed of the motherboard. In fact, access to asynchronous DRAMs often required that wait states be generated to halt the processor until the DRAM had completed a memory transfer. However, the operating speed of asynchronous DRAMs was successfully increased through such innovations as burst and page mode DRAMs, which did not require that an address be provided to the DRAM for each memory access. More recently, synchronous dynamic random access memories ("SDRAMs") have been developed to allow the pipelined transfer of data at the clock speed of the motherboard. However, even SDRAMs are typically incapable of operating at the clock speed of currently available processors. Thus, SDRAMs cannot be connected directly to the processor bus, but instead must interface with the processor bus through a memory controller, bus bridge, or similar device. The disparity between the operating speed of the processor and the operating speed of SDRAMs continues to limit the speed at which processors may complete operations requiring access to system memory.

A solution to this operating speed disparity has been proposed in the form of a computer architecture known as "SyncLink." In the SyncLink architecture, the system memory may be coupled to the processor directly through the processor bus. Rather than requiring that separate address and control signals be provided to the system memory, SyncLink memory devices receive command packets that include both control and address information. The SyncLink memory device then outputs or receives data on a data bus that is coupled directly to the data bus portion of the processor bus.

An example of a computer system 10 using the SyncLink architecture is shown in FIG. 1. The computer system 10 includes a processor 12 having a processor bus 14 coupled to three packetized dynamic random access memory or SyncLink DRAMs ("SLDRAM") devices 16a-c. The computer system 10 also includes one or more input devices 20, such as a keypad or a mouse, coupled to the processor 12 through a bus bridge 22 and an expansion bus 24, such as an industry standard architecture ("ISA") bus or a Peripheral component interconnect ("PCI") bus. The input devices 20 allow an operator or an electronic device to input data to the computer system 10. One or more output devices 30 are coupled to the processor 12 to display or otherwise output data generated by the processor 12. The output devices 30 are coupled to the processor 12 through the expansion bus 24, bus bridge 22 and processor bus 14. Examples of output devices 24 include printers and a video display units. One or more data storage devices 38 are coupled to the processor 12 through the processor bus 14, bus bridge 22, and expansion bus 24 to store data in or retrieve data from storage media (not shown). Examples of storage devices 38 and storage media include fixed disk drives floppy disk drives, tape cassettes and compact-disk read-only memory drives.

In operation, the processor 12 communicates with the memory devices 16a-c via the processor bus 14 by sending the memory devices 16a-c command packets that contain both control and address information. Data is coupled between the processor 12 and the memory devices 16a-c, through a data bus portion of the processor bus 14. Although all the memory devices 16a-c are coupled to the same conductors of the processor bus 14, only one memory device 16a-c at a time reads or writes data, thus avoiding bus contention on the processor bus 14. Bus contention is avoided by each of the memory devices 16a-c on the bus bridge 22 having a unique identifier, and the command packet contains an identifying code that selects only one of these components.

The computer system 10 also includes a number of other components and signal lines which have been omitted from FIG. 1 in the interests of brevity. For example, as explained below, the memory devices 16a-c also receive a master clock signal CKEXT to provide internal timing signals, a data clock signal DCLK clocking data into or out of the memory device 16, and a FLAG signal signifying the start of a command packet.

One of the memory devices 16a is shown in block diagram form in FIG. 2. The memory device 16a includes a clock divider and delay circuit 40 that receives a master clock signal CKEXT and generates an internal clock signal CKINT and a large number of other clock and timing signals to control the timing of various operations in the memory device 16. The memory device 16 also includes a command buffer 46 and an address capture circuit 48 which receive an internal clock signal CKINT, a command packet CA0-CA9 on a 10-bit command bus 50, and a FLAG signal on line 52. As explained above, the command packet contains control and address information for each memory transfer, and the FLAG signal identifies the start of a command packet which may include more than one 10-bit packet word. In fact, a command packet is generally in the form of a sequence of 10-bit packet words on the 10-bit command bus 50. The command buffer 46 receives the command packet from the bus 50, and compares at least a portion of the command packet to identifying data from an ID register 56 to determine if the command packet is directed to the memory device 16a or some other memory device 16b, c. If the command buffer 46 determines that the command packet is directed to the memory device 16a, it then provides a command word to a command decoder and sequencer 60. The command decoder and sequencer 60 generates a large number of internal control signals to control the operation of the memory device 16a during a memory transfer.

The address capture circuit 48 also receives the command words from the command bus 50 and outputs a 20-bit address corresponding to the address information in the command packet. The address is provided to an address sequencer 64 which generates a corresponding 3-bit bank address on bus 66, a 10-bit row address on bus 68, and a 7-bit column address on bus 70. The column address and row address are processed by column and row address paths 73, 75 as will be described below.

One of the problems of conventional DRAMs is their relatively low speed resulting from the time required to precharge and equilibrate circuitry in the DRAM array. The packetized DRAM 16a shown in FIG. 2 largely avoids this problem by using a plurality of memory banks 80, in this case eight memory banks 80a-h. After a memory read from one bank 80a, the bank 80a can be precharged while the remaining banks 80b-h are being accessed. Each of the memory banks 80a-h receive a row address from a respective row latch/decoder/driver 82a-h. All of the row latch/decoder/drivers 82a-h receive the same row address from a predecoder 84 which, in turn, receives a row address from either a row address register 86, redundant row circuit 87, or a refresh counter 88 as determined by a multiplexer 90. However, only one of the row latch/decoder/drivers 82a-h is active at any one time as determined by bank control logic 94 as a function of a bank address from a bank address register 96.

The column address on bus 70 is applied through a column address path 75 to a redundant column circuit 71 that determines if the column address corresponds to a defective address. The redundant column circuit 71 outputs either the column address or a redundant column address to a column latch/decoder 100 which supplies I/O gating signals to an I/O gating circuit 102. The I/O gating circuit 102 interfaces with columns of the memory banks 80a-h through sense amplifiers 104. Data is coupled to or from the memory banks 80a-h through the sense amplifiers 104 and I/O gating circuit 102 to a data path subsystem 108 which includes a read data path 110 and a write data path 112. The read data path 110 includes a bank of DC sense amplifiers 103 and a read atch 120 that amplify and store data from the I/O gating circuit 102. In the emory device 16a shown in FIG. 2, 64 bits of data are stored in the read latch 120. The read latch then provides four 16-bit data words to an output multiplexer 122 that sequentially supplies each of the 16-bit data words to a read FIFO buffer 124. Successive 16-bit data words are clocked through the read FIFO buffer 124 by a clock signal RCLK generated from the internal clock CKINT by a programmable delay circuit 126. The read FIFO buffer 124 sequentially applies the 16-bit words to a driver circuit 128 which, in turn, applies the 16-bit data words to a data bus 130 forming part of the processor bus 14.

The write data path 112 includes a receiver buffer 140 coupled to the data bus 130. The receiver buffer 140 sequentially applies 16-bit words from the data bus 130 to four input registers 142, each of which is selectively enabled by a signal from a clock generator circuit 144 responsive to the data clock DCLK. Thus, the input registers 142 sequentially store four 16-bit data words and combine them into one 64-bit data word applied to a write FIFO buffer 148. The write FIFO buffer 148 is clocked by a signal from the clock generator 144 and an internal write clock WCLK to sequentially apply 64-bit write data to a write latch and driver 150. The write latch and driver 150 applies the 64-bit write data to one of the memory banks 80a-h through the I/O gating circuit 102 and the sense amplifiers 104.

As mentioned above, an important goal of the SyncLink architecture is to allow data transfer between a processor and a memory device to occur at a significantly faster rate. However, the operating rate of a packetized DRAM, including the packetized DRAM shown in FIG. 2, is limited by the time required to receive and process command packets applied to the memory device 16a. More specifically, not only must the command packets be received and stored, but they must also be decoded and used to generate a wide variety of signals, including row, bank and column addresses. However, in order for the memory device 16a to operate at a very high speed, the command packets must be applied to the memory device 16a at a correspondingly high speed. As the operating speed of the memory device 16a increases, the command packets are provided to the memory device 16a at a rate that can exceed the rate at which the address capture circuit 48, the address predecoders 84, the row address registers 86, the latch/decoder/drivers 82a-h, and the column address path 75 can capture and process the addresses.

As the memory device receives and processes command packets at a high rate, command processing circuitry, such as the command buffer 46, produce internal command signals at very high speeds. These high speed command signals must be delivered to the circuitry associated with each of the eight banks 80a-80h. For example, command signals such as precharge and equilibrate signals are transmitted to the row latch/decoder/drivers 82a-82h from the decoder and sequencer 60. Delivery of all of the command signals to the eight banks 80a-80h can require several sets of signal lines, each extending from the command decoder and sequencer 60. Delivery of all of the command signals to the eight banks 80a-80h can require several sets of signal lines, each extending from the command decoder and sequencer 60 to each of the latch/decoder/drivers 82a-82h associated with each of the eight memory banks 80a-82h associated with each of the eight memory banks 80a-80h. Each of the lines consume valuable area on a substrate and complicate routing of signal lines.

Additionally, the internal command signals require time to propagate from the command sequencer and decoder 60 to the various circuitry for accessing the banks 80a-80h. Routing differences between the bank control logic 94 and the latch/decoder/drivers 82a-82h can therefore cause differences in the times at which the internal command signal reach the latch/decoder/driver 82a-82h. The differences in arrival times can become significant at high speeds of operation and eventually limit the operating speed of the packetized DRAM.

Although the foregoing discussion is directed to the need for faster command buffers in packetized DRAMs, similar problems exist in other memory devices, such as asynchronous DRAMs and synchronous DRAMs, which must process control and other signals at a high rate of speed. Thus, for the reasons explained above, the limited operating speed of conventional processing of addresses and commands threatens to limit the maximum operating speed of memory devices, particularly packetized DRAMs. Therefore, there is a need for address handling and command processing circuitry that is able to receive and process command packets at a high rate.

SUMMARY OF THE INVENTION

A high-speed memory device includes a pipelined address path, a global timing circuit, local control circuits and local latches. Global signals from the global timing circuit act as latch control signals to latch addresses or other control signals at the lead latches. Additionally, the global signals activate one or more of the local timing circuits to produce local timing signals. The global signal may also activate latches within a pipeline of row or column address path.

In one embodiment, the memory device is a packetized memory device that receives a command packet including command and address information. The command information is processed by a command buffer and command sequencer and decoder. The address information is captured by an address capture circuit that extracts row, column, and bank addresses from the packet.

The captured address is input to an address latch that latches the address responsive to a global control signal. The latched address is then applied to a redundant detect circuit that determines if the latched address corresponds to a defective row or column. If the latched address corresponds to a defective row or column, the redundant detect circuit outputs an address of a redundant row or column. The redundant address or the latched address are then latched at a first interim latch responsive to a strobe signal responsive to the global control signal. The interim latch provides the address to a data transfer circuitry that controls reading and writing to a memory array responsive to local control signals.

Each bank of the memory array includes a respective local timing circuit that produces the local control signals responsive to the global control signal. The global control signal thus acts as a latch control signal to control latching of the address and as a timing signal to initiate a data transfer operation.

In one embodiment, respective local latches are coupled to each of the local timing circuits to receive addressing information and certain other signals. The global control signals activate the local latches to latch the addressing information and other signals.

BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 is a block diagram of a computer system using SyncLink architecture.

FIG. 2 is a block diagram of a packetized DRAM used in the computer system of FIG. 1.

FIG. 3 is a block diagram of a portion of a packetized DRAM according to one embodiment of the invention, including address paths coupled to banks of a memory array.

FIG. 4 is a signal timing diagram showing selected signals used in the row add