8085 instruction set: the octal table

The instruction set of the 8085 microprocessor has an underlying structure that becomes much clearer if expressed in an octal-based table, rather than usual hexadecimal-based table:

 \0_0\0_1\0_2\0_3\0_4\0_5\0_6\0_7\1_0\1_1\1_2\1_3\1_4\1_5\1_6\1_7
\00_NOPLXI B,d16STAX BINX BINR BDCR BMVI B,d8RLCMOV B,BMOV B,CMOV B,DMOV B,EMOV B,HMOV B,LMOV B,MMOV B,A
\01_dsubDAD BLDAX BDCX BINR CDCR CMVI C,d8RRCMOV C,BMOV C,CMOV C,DMOV C,EMOV C,HMOV C,LMOV C,MMOV C,A
\02_arhlLXI D,d16STAX DINX DINR DDCR DMVI D,d8RALMOV D,BMOV D,CMOV D,DMOV D,EMOV D,HMOV D,LMOV D,MMOV D,A
\03_rdelDAD DLDAX DDCX DINR EDCR EMVI E,d8RARMOV E,BMOV E,CMOV E,DMOV E,EMOV E,HMOV E,LMOV E,MMOV E,A
\04_RIMLXI H,d16SHLD a16INX HINR HDCR HMVI H,d8DAAMOV H,BMOV H,CMOV H,DMOV H,EMOV H,HMOV H,LMOV H,MMOV H,A
\05_ldhi r8DAD HLHLD a16DCX HINR LDCR LMVI L,d8CMAMOV L,BMOV L,CMOV L,DMOV L,EMOV L,HMOV L,LMOV L,MMOV L,A
\06_SIMLXI SP,d16STA a16INX SPINR MDCR MMVI M,d8STCMOV M,BMOV M,CMOV M,DMOV M,EMOV M,HMOV M,LHLTMOV M,A
\07_ldsi r8DAD SPLDA a16DCX SPINR ADCR AMVI A,d8CMCMOV A,BMOV A,CMOV A,DMOV A,EMOV A,HMOV A,LMOV A,MMOV A,A
\20_ADD BADD CADD DADD EADD HADD LADD MADD ARNZPOP BJNZ a16JMP a16CNZ a16PUSH BADI d8RST 0
\21_ADC BADC CADC DADC EADC HADC LADC MADC ARZRETJZ a16rstvCZ a16CALL a16ACI d8RST 1
\22_SUB BSUB CSUB DSUB ESUB HSUB LSUB MSUB ARNCPOP DJNC a16OUT d8CNC a16PUSH DSUI d8RST 2
\23_SBB BSBB CSBB DSBB ESBB HSBB LSBB MSBB ARCshlxJC a16IN d8CC a16jnk a16SBI d8RST 3
\24_ANA BANA CANA DANA EANA HANA LANA MANA ARPOPOP HJPO a16XTHLCPO a16PUSH HANI d8RST 4
\25_XRA BXRA CXRA DXRA EXRA HXRA LXRA MXRA ARPEPCHLJPE a16XCHGCPE a16lhlxXRI d8RST 5
\26_ORA BORA CORA DORA EORA HORA LORA MORA ARPPOP PSWJP a16DICP a16PUSH PSWORI d8RST 6
\27_CMP BCMP CCMP DCMP ECMP HCMP LCMP MCMP ARMSPHLJM a16EICM a16jk a16CPI d8RST 7

The large-scale structure of the instruction set is by quadrant (i.e. the top two bits): MOV instructions in the pink quadrant, arithmetic instructions in the cyan quadrant, increment, decrement, rotates in the yellow quadrant, and control flow (jump, call, return, push, pop, rst) in the purple quadrant. It's not totally regular, of course. Some instructions are wedged in where they can fit, for example the spot where memory-to-memory move (MOV M, M) would go is replaced by HLT.

Note how registers are controlled by an octal digit in the sequence B, C, D, E, H, L, M, and A. This is especially notable for the MOV instructions and arithmetic instructions. For instructions acting on register pairs, the structure is similar: BC, BC, DE, DE, HL, HL, SP, SP.

Although octal is unpopular now, early microprocessors were designed with octal in mind, using groups of three bits to select registers and operations. Now hexadecimal is popular, but when the opcodes are displayed in a hex-based table, the underlying structure of the instructions is obscured.

Note that the four blocks have been arranged for ease of display - strictly speaking they should be stacked vertically rather than a 2x2 grid. The table includes undocumented instructions, which are shown in lower case. Mouse over a cell to see the hex value of the instruction. Credits: original data from pastraiser.com 8085 instruction table.

How the 8085 decodes instructions internally

The 8085 uses a set of PLAs to decode and process instructions. In the first step of processing an instruction the instruction decode ROM (details) decodes the instruction into one of 48 different instruction groups. The grid below is colored according to the instruction group (0 through 47).

NOP
LXI B,d16
42
STAX B
40
INX B
36
INR B
38
DCR B
38
MVI B,d8
14
RLC
25
MOV B,B
45
MOV B,C
45
MOV B,D
45
MOV B,E
45
MOV B,H
45
MOV B,L
45
MOV B,M
44
MOV B,A
45
dsub
21
DAD B
20
LDAX B
41
DCX B
37
INR C
38
DCR C
38
MVI C,d8
14
RRC
25
MOV C,B
45
MOV C,C
45
MOV C,D
45
MOV C,E
45
MOV C,H
45
MOV C,L
45
MOV C,M
44
MOV C,A
45
arhl
24
LXI D,d16
42
STAX D
40
INX D
36
INR D
38
DCR D
38
MVI D,d8
14
RAL
25
MOV D,B
45
MOV D,C
45
MOV D,D
45
MOV D,E
45
MOV D,H
45
MOV D,L
45
MOV D,M
44
MOV D,A
45
rdel
22
DAD D
20
LDAX D
41
DCX D
37
INR E
38
DCR E
38
MVI E,d8
14
RAR
25
MOV E,B
45
MOV E,C
45
MOV E,D
45
MOV E,E
45
MOV E,H
45
MOV E,L
45
MOV E,M
44
MOV E,A
45
RIM
3
LXI H,d16
42
SHLD a16
12
INX H
36
INR H
38
DCR H
38
MVI H,d8
14
DAA
6
MOV H,B
45
MOV H,C
45
MOV H,D
45
MOV H,E
45
MOV H,H
45
MOV H,L
45
MOV H,M
44
MOV H,A
45
ldhi r8
23
DAD H
20
LHLD a16
13
DCX H
37
INR L
38
DCR L
38
MVI L,d8
14
CMA
6
MOV L,B
45
MOV L,C
45
MOV L,D
45
MOV L,E
45
MOV L,H
45
MOV L,L
45
MOV L,M
44
MOV L,A
45
SIM
3
LXI SP,d16
42
STA a16
8
INX SP
36
INR M
39
DCR M
39
MVI M,d8
16
STC
6
MOV M,B
43
MOV M,C
43
MOV M,D
43
MOV M,E
43
MOV M,H
43
MOV M,L
43
HLT
47
MOV M,A
43
ldsi r8
23
DAD SP
20
LDA a16
9
DCX SP
37
INR A
38
DCR A
38
MVI A,d8
14
CMC
6
MOV A,B
45
MOV A,C
45
MOV A,D
45
MOV A,E
45
MOV A,H
45
MOV A,L
45
MOV A,M
44
MOV A,A
45
ADD B
1
ADD C
1
ADD D
1
ADD E
1
ADD H
1
ADD L
1
ADD M
4
ADD A
1
RNZ
19
POP B
27
JNZ a16
29
JMP a16
30
CNZ a16
33
PUSH B
26
ADI d8
2
RST 0
5
ADC B
1
ADC C
1
ADC D
1
ADC E
1
ADC H
1
ADC L
1
ADC M
4
ADC A
1
RZ
19
RET
18
JZ a16
29
rstv
7
CZ a16
33
CALL a16
34
ACI d8
2
RST 1
5
SUB B
1
SUB C
1
SUB D
1
SUB E
1
SUB H
1
SUB L
1
SUB M
4
SUB A
1
RNC
19
POP D
27
JNC a16
29
OUT d8
17
CNC a16
33
PUSH D
26
SUI d8
2
RST 2
5
SBB B
1
SBB C
1
SBB D
1
SBB E
1
SBB H
1
SBB L
1
SBB M
4
SBB A
1
RC
19
shlx
10
JC a16
29
IN d8
15
CC a16
33
jnk a16
31
SBI d8
2
RST 3
5
ANA B
1
ANA C
1
ANA D
1
ANA E
1
ANA H
1
ANA L
1
ANA M
4
ANA A
1
RPO
19
POP H
27
JPO a16
29
XTHL
35
CPO a16
33
PUSH H
26
ANI d8
2
RST 4
5
XRA B
1
XRA C
1
XRA D
1
XRA E
1
XRA H
1
XRA L
1
XRA M
4
XRA A
1
RPE
19
PCHL
32
JPE a16
29
XCHG
46
CPE a16
33
lhlx
11
XRI d8
2
RST 5
5
ORA B
1
ORA C
1
ORA D
1
ORA E
1
ORA H
1
ORA L
1
ORA M
4
ORA A
1
RP
19
POP PSW
27
JP a16
29
DI
0
CP a16
33
PUSH PSW
26
ORI d8
2
RST 6
5
CMP B
1
CMP C
1
CMP D
1
CMP E
1
CMP H
1
CMP L
1
CMP M
4
CMP A
1
RM
19
SPHL
28
JM a16
29
EI
0
CM a16
33
jk a16
31
CPI d8
2
RST 7
5
Colors by iWantHue

The internal decoding shown above reveals a few interesting things. The NOP instruction is literally no operation - it doesn't get decoded into any instruction group. The MOV instructions are all decoded together, except for the memory operations. Similarly, the arithmetic instructions are all grouped together, except for the memory instructions. There are other smaller groups (e.g. INR/DCR, conditional jumps, conditional calls, returns), and 21 instructions that are handled uniquely(e.g. CALL, PCHL, XCHG, HALT, and 6 undocumented instructions). Surprisingly, DAA, CMA, STC, and CMC are handled together at this stage, despite having very different actions.

Silicon reverse engineering: The 8085's undocumented flags

The 8085 microprocessor has two undocumented status flags: V and K. These flags can be reverse-engineered by looking at the silicon of the chip, and their function turns out to be different from previous explanations. In addition, the implementation of these flags shows that they were deliberately implemented, which raises the question of why they were not documented or supported by Intel. Finally, examining how these flag circuits were implemented in silicon provides an interesting look at how microprocessors are physically implemented.

Like most microprocessors, the 8085 has a flag register that holds status information on the results of an operation. The flag register is 8 bits: bit 0 holds the carry flag, bit 2 holds the parity, bit 3 is always 0, bit 4 holds the half-carry, bit 6 holds the zero status, and bit 7 holds the sign. But what about the missing bits: 1 and 5?

Back in 1979, users of the 8085 determined that these flag bits had real functions.[1] Bit 1 is a signed-number overflow flag, called V, indicating that the result of a signed add or subtract won't fit in a byte.[2] Bit 5 of the flag is poorly understood and has been given the names K, X5, or UI. For an increment/decrement operation it simply indicates 16-bit overflow or underflow. But it has a totally diffrent value for arithmetic operations. The flag has been described[1][3] as:

K =  O1·O2 + O1·R + O2·R, where:
O1 = sign of operand 1
O2 = sign of operand 2
R = sign of result
For subtraction and comparisons, replace O2 with complement of O2.
As I will show, that published description is mistaken. The K flag actually is the V flag exclusive-ored with the sign of the result. And the purpose of the K flag is to compare signed numbers.

The circuit for the K and V flags

The following schematic shows the reverse-engineered circuit for the K and V flags in the 8085. The V flag is simply the exclusive-or of the carry into the top bit and the carry out of the top bit. This is a standard formula for computing overflow[2] for signed addition and subtraction. (The 6502 computes the same overflow value through different logic.) The V flag has values for other arithmetic operations, but the values aren't useful.[4] A latch stores the value of the V flag. The computed V value is stored in the latch under the control of a store_v_flag control signal. Alternatively, the flag value can be read off the bus and stored in the latch under the control of the bus_to_flags control signal; this is how the POP PSW instruction, which pops the flags from the stack, is implemented. Finally, a tri-state superbuffer (the large triangle) writes the flag value to the bus when needed.

The K flag circuitry is on the right. The first function of the K flag is overflow/underflow for an INX/DEX instruction. This is implemented simply: the carry_to_k_flag control line sets the K flag according to the carry from the incrementer/decrementer. The next function of K flag is reading from the databus for the POP PSW instruction, which is the same as for the V flag. The final function of the K flag is the result of a signed comparison. The K flag is the exclusive-or of the V flag and the sign bit of the result. For subtraction and comparison, the K flag is 1 if the second value is larger than the first.[5] The K flag is set for other arithmetic operations, but doesn't have a useful value except for signed comparison and subtraction.[4]

The circuit in the 8085 for the undocumented V and K flags. The flags are generated from the carries and results from the ALU. The K flag can also be set by the carry from the incrementer/decrementer.

The circuit in the 8085 for the undocumented V and K flags. The flags are generated from the carries and results from the ALU. The K flag can also be set by the carry from the incrementer/decrementer.
One mystery was the purpose of the K flag: "It does not resemble any normal flag bit."[1] Its use for increment and decrement is clear, but for arithmetic operations why would you want the exclusive-or of the overflow and sign? It turns out the the K flag is useful for signed comparisons. If you're comparing two signed values, the first is smaller if the exclusive-or of the sign and overflow is 1.[6] This is exactly what the K flag computes.

From the circuit above, it is clear that the V and K flags were deliberately added to the chip. (This is in contrast to the 6502, where undocumented opcodes have arbitrary results due to how the circuitry just happens to work for unexpected inputs.[7]) Why would Intel add the above circuitry to the chip and then not document or support it? My theory is that Intel decided they didn't want to support K or (8-bit) V flags in the 8086, so in order to make the 8086 source-compatible with the 8085, they dropped those flags from the 8085 documentation, but the circuitry remained in the chip.

The silicon

The 8085 microprocessor showing the data bus, ALU, flag logic, registers, and incrementer/decrementer.
The 8085 microprocessor showing the data bus, ALU, flag logic, registers, and incrementer/decrementer.
The remainder of this article will show how the V and K flag circuits work, diving all the way down to the silicon circuits. The above image of the 8085 chip shows the layout of the chip and the components that are important to the discussion. In the upper left of the chip is the ALU (arithmetic-logic unit), where computations happen (details). The data bus is the main interconnect in the chip, connects the data pins (upper left), the ALU, the data registers, the flag register, and the instruction decoding (upper right). In the lower left of the chip is the 16-bit register file. Underneath the register file is a 16-bit increment/decrement circuit which handles incrementing the program counter, as well as supporting 16-bint increment and decrement instructions. The increment/decrement circuit has a carry-out in the lower right corner - this will be important for the discussion of the K flag. For some reason, the ALU has the low-order bit on the right, while the registers have the low-order bit on the left.

The flag logic circuitry sits underneath the ALU, with high-current drivers right on top of the data bus. The flags are arranged in apparently-random order with bit 7 (sign) on the left and bit 6 (zero) on the right. Because the carry logic is much more complicated (handling not only arithmetic operations but shifts and rotates, carry complement, and decimal adjust), the carry logic is stuck off to the right of the ALU where there was enough room.

Zooming in

Next we will zoom in on the V flag circuitry, labeled V1 above. Looking at the die under a microscope shows the metal layer of the chip, consisting of mostly-horizontal metal interconnects, which are the white lines below. The bottom part of the chip has the 8-bit data bus. Other wires are the VCC power supply, ground, and a variety of signals. While modern processors can have ten or more metal layers, the 8085 only has a single layer. Some of the circuitry underneath the metal is visible.

The metal layer of the 8085 microprocessor, zoomed in on the V flag circuit.

The metal layer of the 8085 microprocessor, zoomed in on the V flag circuit.
If the metal is removed from the chip, the silicon layer becomes visible. The blotchy green/purple is plain silicon. The pink regions are N-type doped silicon. The grayish regions are polysilicon, which can be considered as simply conductive wires. When polysilicon crosses doped silicon, it forms a transistor, which appears light green in this image. Note that transistors form a fairly small portion of the chip; there is a lot more connection and wiring than actual transistors. The small squares are vias, connections to the metal layer.

The V flag circuit in the 8085 CPU. This is the silicon/polysilicon after the metal layer has been removed. The data bus is not visible as it is in the metal layer, but it is in the lower third of the image. The rectangles at the bottom connect the data bus to the registers.

The V flag circuit in the 8085 CPU. This is the silicon/polysilicon after the metal layer has been removed. The data bus is not visible as it is in the metal layer, but it is in the lower third of the image. The rectangles at the bottom connect the data bus to the registers.

MOSFET transistors

For this discussion, a MOSFET can be considered simply a switch that closes if the gate input is 1 and opens if the gate input is 0. A MOSFET transistor is implemented by separating two diffusion regions, and putting a polysilicon wire over the gate. An insulating layer prevents any current from flowing between the gate and the rest of the transistor. In the following diagram, the n+ diffusion regions are pink, the polysilicon gate conductor is dull green, and the insulating oxide layer is turquoise.

Structure of a MOSFET transistor. The n+ diffusion regions are pink, the polysilicon gate conductor is dull green, and the insulating oxide layer is turquoise.

NOR gate

The NOR gate is a fundamental building block in the 8085, since it is a very simple gate that can form more complex logic. A NOR gate is implemented through two transistors and a pullup transistor. If either input (or both) is 1, the corresponding transistor connects the output to ground. Otherwise, the transistors are open, and the pullup pulls the output high. The pullup is shown as a resistor in the schematic, but it is actually a type of transistor called a depletion-mode transistor for better performance.

A NOR gate is implemented through two transistors and a pullup transistor. If either (or both) input is 1, the corresponding transistor connects the output to ground. Otherwise, the transistors are open, and the pullup pulls the output high.

By zooming in to a single NOR gate in the 8085, we can see how the gate is actually implemented. One surprise is that the circuit is almost all wiring; the transistors form a very small part of the circuit. The two transistors are connected to ground on the left, and tied together on the right. The pullup transistor is much larger than the other transistors for technical reasons.[8]

To understand the circuit, trace the path from ground to each transistor, across the gate, and to the output. In this way you can see there are two paths from ground to the output, and if either input is 1 the output will be 0.

The layout of the gate is intended to be as efficient as possible, given the constraints of where the power (VCC), ground, and other connections are, yielding a layout that looks a bit unusual. The power, ground, and input signals are all in the metal layer above (not shown here), and are connected to this circuit through vias between the metal and the silicon below.

A NOR gate in the 8085 microprocessor, showing the components.If either input is high, the associated transistor will connect the output to ground. Otherwise the pullup transistor will pull the output high.

A NOR gate in the 8085 microprocessor, showing the components.If either input is high, the associated transistor will connect the output to ground. Otherwise the pullup transistor will pull the output high.

Exclusive-or gates

The exclusive-or circuit (which outputs a 1 if exactly one input is 1) is a key component of the flag circuitry, and illustrates how more complex logic can be formed out of simpler gates. The schematic below shows how the exclusive-or is built from a NOR gate and an AND-NOR gate; it is straightforward to verify that if both inputs are 0 or both inputs are 1, the output is will be 0.

You may wonder why the 8085 uses so many "strange" gates such as a combined AND-NOR, instead of "normal" gates like AND. The transistor-level schematic shows that an AND-NOR gate can actually be implemented very simply with MOSFETs, in fact simpler than a plain AND gate. The two rightmost transistors form the "AND" - if they both have 1 inputs, they connect the output to ground. The transistor to the left forms the other part of the NOR - if it has a 1 input, it pulls the output to ground.

The exclusive-or circuit used in the 8085: gate-level and transistor-level.

The following diagram shows an XOR circuit in the 8085 that matches the schematic above. (This is the XOR gate that generates the K flag.) On the left is the NOR gate discussed above, and on the right is the AND-NOR circuit, both outlined with a dotted line. As before, the circuit is mostly wiring, with the transistors forming a small part of the circuit (the green regions between pink diffusion regions).

An XOR gate in the 8085 microprocessor, formed from a NOR gate and an AND-NOR gate. If both inputs are 0, the NOR gate output will be 1, and the NOR transistor will pull the output to 0. If both inputs are 1, the AND transistors will pull the output to 0. Otherwise the pullup transistor will pull the output 1.

An XOR gate in the 8085 microprocessor, formed from a NOR gate and an AND-NOR gate. If both inputs are 0, the NOR gate output will be 1, and the NOR transistor will pull the output to 0. If both inputs are 1, the AND transistors will pull the output to 0. Otherwise the pullup transistor will pull the output 1.

The flag latch

Each flag bit is stored in a simple latch circuit made up of two inverters. To store a 1, the inverter on the right outputs a 0, which is fed into the inverter on the left, which outputs a 1, which is fed back to the inverter on the right. A zero is stored in a similar (but opposite) manner. When the clock input is low, the pass transistor opens, breaking the feedback loop, and new data can be written into the latch. The complemented output (/out) is taken from the inverter.

You might wonder why the latch doesn't lose its data whenever the clock goes low. There's an interesting trick here called dynamic logic. Because the gate of a MOSFET consists of an insulating layer it has very high resistance. Thus, any electrical charge on the gate will remain there for some time[9] when the pass transistor opens. When the pass transistor closes, the charge is refreshed.

The latch used in the 8085 to store a flag value. The latch uses two inverters to store the data. When the clock is low, a new value can be written to the latch.

The latch used in the 8085 to store a flag value. The latch uses two inverters to store the data. When the clock is low, a new value can be written to the latch.

The following part of the 8085 chip shows the implementation of the latch for the V flag. The circuit closely matches the schematic above. The two inverters are outlined with dotted lines. The red arrows show the flow of data through the circuit. As before, the wiring and pullup transistors take up most of the silicon real estate.

Each flag in the 8085 uses a two-inverter latch to store the flag. This shows the latch for the undocumented V flag. The red arrows show the flow of data.

Each flag in the 8085 uses a two-inverter latch to store the flag. This shows the latch for the undocumented V flag. The red arrows show the flow of data.

Driving the data bus with a superbuffer

Another interesting feature of the flag circuit is the "superbuffer". Most transistors in the 8085 only send a signal a short distance. However, to send a signal on the data bus across the whole chip takes a lot more power, so a superbuffer is used. In the superbuffer, one transistor is driven to pull the output low, while a second transistor is driven to pull the output high. (This is in contrast to a regular gate, which uses a depletion-mode pullup transistor to pull the output high.) In addition, these transistors are considerably larger, to provide more current.[8] These two transistors are shown at the bottom the schematic below.

The other feature of this superbuffer is that it is tri-state. In addition to a 0 or 1 output, it has a third state, which basically consists of providing no output. This way, the flags do not affect the data bus except when desired. In the schematic, it can be seen that if the control input is 1, both NOR gates will output 0, and both transistors will do nothing.

The superbuffer used in the 8085 to drive the data bus.

The superbuffer used in the 8085 to drive the data bus.

The following diagram shows the two drive transistors, as well as the line used to read the flag from the data bus. (The NOR gates are not shown.) Note the size of these transistors compared to transistors seen earlier. Each flag bit requires a superbuffer such as this. Even flag bit 3, which is always 0, requires a large transistor to drive the 0 onto the bus - it's surprising that a do-nothing flag still takes up a fair bit of silicon.

Each flag in the 8085 uses a superbuffer to drive the value onto the data bus. This figure shows the two large transistors that drive the V flag onto bit 1 of the data bus.

Each flag in the 8085 uses a superbuffer to drive the value onto the data bus. This figure shows the two large transistors that drive the V flag onto bit 1 of the data bus.

Putting it all together

The above discussion has shown the details of the XOR gate that computes the K flag, and the latch and superbuffer for the V flag. The following diagram shows how these pieces fit into the overall circuitry. The latch and driver for the K flag are outside this image, to the right. The circuits below are tied together by the metal layer, which isn't shown. Compare this diagram with the schematic at the top of the article to see how the components are implemented. The two XOR circuits look totally different, since their layouts have been optimized to fit with the signals they need.

The 8085 circuits to implement the undocumented V and K flags. The ALU provides /carry6, /carry7, and result7. The XOR circuit on the left generates V, and the XOR circuit in the middle generates K. On the right are the latch for the V flag, and the superbuffer that outputs the flag to the data bus. The K flag latch and superbuffer are to the right, not shown.

The 8085 circuits to implement the undocumented V and K flags. The ALU provides /carry6, /carry7, and result7. The XOR circuit on the left generates V, and the XOR circuit in the middle generates K. On the right are the latch for the V flag, and the superbuffer that outputs the flag to the data bus. The K flag latch and superbuffer are to the right, not shown.
By looking at the silicon chip carefully, the transistors, gates, and complex circuits start to make sense. It's amazing to think that the complex computers we use are built out of these simple components. Of course, processors now are way more complex than the 8085, with billions of transistors instead of thousands, but the basic principles are still the same.

If you found this discussion interesting, check out my earlier analysis of the 6502's overflow flag and the 8085's ALU. You may also be interested in the book The Elements of Computing Systems, which describes how to build a computer starting with Boolean logic.

Credits

The chip images are from visual6502.org. The visual6502 team did the hard work of dissolving chips in acid to remove the packaging and then taking many close-up photographs of the die inside. Pavel Zima converted these photographs into mask layer images, a transistor net, and an 8085 simulator.

Notes and references

[1] The undocumented instructions and flags of the 8085 were discovered by Wolfgang Sehnhardt and Villy M. Sorensen in the process of writing an 8085 assembler, and were written up in the article Unspecified 8085 op codes enhance programming, Engineer's Notebook, "Electronics" magazine, Jan 18, 1979 p 144-145.

[2] See my article The 6502 overflow flag explained mathematically for details on overflow. There are multiple ways of computing overflow, and the 6502 uses a different technique.

[3] Tundra Semiconductor sold the CA80C85B, a CMOS version of the 8085. Interestingly, the undocumented opcodes and flags are described in the datasheet for this part: CA80C85B datasheet, 8000-series components.

The interesting thing about the Tundra datasheet is the descriptions of the "new" flags and instructions are copied almost exactly from Dehnhardt's article except for the introduction of errors, missing parentheses, and renaming the K flag as UI. In addition, as I described earlier, the published K/UI flag formula doesn't always work. Thus, it appears that despite manufacturing the chip, Tundra didn't actually know how these circuits worked.

[4] The V flag makes sense for signed addition and subtraction, and the K flag makes sense for signed subtraction and comparison. Many other operations affect these flags, but the flags may not have any useful meaning.

The V flag is 0 for RRC, RAR, AND, OR, and XOR operations, since these operations have constant carry values inside the ALU (details). The RLC and RAL operations add the accumulator to itself, so they can be treated the same as addition: V is set if the signed result is too big for a byte. The V flag for DAA can also be understood in terms of the underlying addition: V will only be set if the top digit goes from 7 to 8. However, since BCD digits are unsigned, V has no useful meaning with DAA. DAD is an interesting case, since the V flag indicates 16-bit signed overflow; it is actually computed from the result of the high-order addition. For INR, the only overflow case is going from 0x7f to 0x80 (127 to -128); note that going from 0xff to 0x00 corresponds to -1 to 0, which is not signed overflow even though it is unsigned overflow. Likewise, DCR sets the V flag going from hex 80 to 7f (-128 to 127); likewise 0x00 to 0xff is not signed overflow.

The K flag has a few special cases. For AND, OR, and XOR, the K flag is the same as the sign, since the V flag is 0. Note that the K flag is computed entirely differently for INR/DCR compared to INX/DCX. For INR and DCR, the K flag is S^V, which almost always is S. The K flag is set for DAA if S^V is true, which doesn't have any useful meaning since BCD values are unsigned.

The published formula for the K flag gives the wrong value for XOR if both arguments are negative.

[5] The following table illustrates the 8 possible cases when comparing signed numbers A and B. The inputs are the top bit of A, the top bit of B, and the carry from bit 6 when subtracting B from A. The outputs are the carry, borrow (complement of carry), sign, overflow, and K flags. An example is given for each row. Note that the K flag is set if A is less than B when treated as signed numbers.

InputsOutputsExample
A7B7C6CBSVKHexSigned comparison
010010000x50 - 0xf0 = 0x6080 - -16 = 96
011011100x50 - 0xb0 = 0xa080 - -80 = -96
000011010x50 - 0x70 = 0xe080 - 112 = -32
001100000x50 - 0x30 = 0x12080 - 48 = 32
110011010xd0 - 0xf0 = 0xe0-48 - -16 = -32
111100000xd0 - 0xb0 = 0x120-48 - -80 = 32
100100110xd0 - 0x70 = 0x160-48 - 112 = 96
101101010xd0 - 0x30 = 0x1a0-48 - 48 = -96

[6] A detailed explanation of signed comparisons is given in Beyond 8-bit Unsigned Comparisons by Bruce Clark, section 5. While this article is in the context of the 6502, the discussion applies equally to the 8085.

[7] The illegal opcodes in the 6502 are discussed in detail in How MOS 6502 Illegal Opcodes really work. In the 6502, the operations performed by illegal opcodes are unintended, just chance based on what the chip logic happens to do with unexpected inputs. In contrast, the undocumented opcodes in the 8085, like the undocumented flags, are deliberately implemented.

[8] The key parameter in the performance of a MOSFET transistor is the width to length ratio of the gate. Oversimplifying slightly, the current provided by the transistors is proportional to this ratio. (Width is the width of the source or drain, and length is the length across the gate from source to drain.) For an inverter, the W/L ratio of the pullup should be approximately 1/4 the W/L ratio of the input transistor for best performance. (See Introduction to VLSI Systems, Mead, Conway, p 8.) The result is that pullup transistors are big and blocky compared to pulldown transistors. Another consequence is that high-current transistors in a superbuffer have a very wide gate. The 8085 register file has some transistors where the W/L ratios are carefully configured so one transistor will "win" over the other if both are on at the same time. (This is why the 8085 simulator is more complex than the 6502 simulator, needing to take transistor sizes into account.)

[9] One effect of using pass-transistor dynamic buffers is that if the clock speed is too small, the charge will eventually drain away causing data loss. As a result the 8085 has a minimum clock speed of 500 kHz. Likewise, the 6502 has a minimum clock speed. The Z-80 in contrast is designed with static logic, so it has no minimum clock speed - the clock can be stepped as slowly as desired.