A " synchronous SR latch " ( sometimes " clocked SR flip-flop " ) can be made by adding a second level of NAND gates to the inverted SR latch ( or a second level of AND gates to the direct SR latch ).
42.
In the example, a NAND gate has been shown, the set of all input values that can test output's SA0 is { 00, 01, 10 } . the set of all input values that can check first input's SA1 is { 01 }.
43.
In digital electronics, a "'NAND gate "'( "'negative-AND "') is a logic gate which produces an output which is false only if all its inputs are true; thus its output is inverters followed by an OR gate.
44.
In fact ( if I remember correctly, which is dodgy, since it's not my specialty ), in the real world, pretty much everything is made of NAND gates, because they're the natural thing to make with transistors ( with the exception of DRAM, which uses capacitors ) . " Stansifer ) " 02 : 05, 7 January 2012 ( UTC)
45.
This makes the circuit ( with its output connected to a high impedance ) less efficient than the static version ( which theoretically should not allow any current to flow except through the output ), and when the " A " and " B " inputs are constant and both high, the dynamic NAND gate uses power in proportion to the clock rate, as long as it functions correctly.
46.
"Propagation delay " is the time taken for a two-input NAND gate to produce a result after a change of state at its inputs . " Toggle speed " represents the fastest speed at which a J-K flip flop could operate . " Power per gate " is for an individual 2-input NAND gate; usually there would be more than one gate per IC package.
47.
"Propagation delay " is the time taken for a two-input NAND gate to produce a result after a change of state at its inputs . " Toggle speed " represents the fastest speed at which a J-K flip flop could operate . " Power per gate " is for an individual 2-input NAND gate; usually there would be more than one gate per IC package.
48.
Now imagine instead of running operations through a array of NAND gates to end up with the logic you want, and managing the overhead of tending to all the various subsystems ( and God help you if you have " other " processes running at the time ), not to mention the overhead that's inevitable with any compiled programming language ( for example the call stack and activation record that's hard coded into any program compiled from C + + ).
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