404 lines
19 KiB
TeX
404 lines
19 KiB
TeX
\chapter{Instruction Set Architecture}
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Instructions are variable width with most instructions' width being determined by the \textit{mode} byte that follows immediately after the opcode byte. The \textit{mode} byte is split into four parts, with the upper nibble describing what the types of source and destination operands the instruction is to deal with. Following those four bits is two reserved bits and finally the final two bits in the least significant half of the lower nibble, the \textit{source width}. Depending on the \textit{source type} bits, the next number of bytes to be read for the source operand can be 8-, 16- or 32-bits and the same applies to the \textit{destination type} bits. A more visual layout of this may be found in Figure \ref{fig:opencoding}.
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\section{Instruction Layout}
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% Placement info here: https://en.wikibooks.org/wiki/LaTeX/Floats,_Figures_and_Captions#Figures
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% Paths: https://tikz.dev/tikz-paths
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\begin{figure}[ht]
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\begin{tikzpicture}
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%\draw[help lines] (-8,-5) grid (8,5);
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\draw (-8, 4) node[above] {7} rectangle (-6, 3) node[above = 1] {0};
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\node at (-7, 2.5) {Opcode};
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\draw (-5, 4) node[above] {7} rectangle (-3, 3) node[above = 1] {0};
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\draw[dashed] (-4.5, 3) -- (-4.5, 4) node[above] {6};
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\draw[dashed] (-4, 3) -- (-4, 4) node[above] {4};
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\draw[dashed] (-3.5, 3) -- (-3.5, 4) node[above] {2};
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\node at (-4, 2.5) {Mode};
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\node (A) at (-4, 2.0) {(If required)};
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%Operand One
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\draw (-2, 4) node[above] {31} rectangle (2, 3) node[above = 1] {0};
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\draw[dashed] (1, 3) -- (1, 4) node[above] {7};
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\draw[dashed] (0, 3) -- (0, 4) node[above] {15};
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\node at (0, 2.5) {Source (Variable)};
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\node at (0, 2.0) {(If required)};
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%Operand Two
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\draw (3, 4) node[above] {31} rectangle (7, 3) node[above = 1] {0};
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\draw[dashed] (6, 3) -- (6, 4) node[above] {7};
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\draw[dashed] (5, 3) -- (5, 4) node[above] {15};
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\node at (5, 2.5) {Destination (Variable)};
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\node at (5, 2.0) {(If required)};
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%Mode / argument break down.
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%Fanout
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\draw (A.west) -- (-8, 0);
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\draw (A.east) -- (3, 0);
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%Operand One Type
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\draw (-8, 0) node[above] {7} rectangle (-6, -1) node[above = 1] {6};
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\node at (-7, -1.5) {Source Type};
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%Operand Two Type
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\draw (-5, 0) node[above] {5} rectangle (-3, -1) node[above = 1] {4};
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\node at (-4, -1.5) {Destination Type};
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%Reserved
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\draw (-2, 0) node[above] {3} rectangle (0, -1) node[above = 1] {2};
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\node at (-1, -1.5) {Reserved};
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%Width Descriptor
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\draw (1, 0) node[above] {1} rectangle (3, -1) node[above = 1] {0};
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\node at (2, -1.5) {Source Width};
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\end{tikzpicture}
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\caption{Encoding}
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\label{fig:opencoding} % https://www.overleaf.com/learn/latex/Referencing_Figures
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\end{figure}
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%Argument options
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% Register first
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\newcommand{\rRArgH}{0}\newcommand{\rRaArgH}{1}\newcommand{\rAArgH}{3}
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% Register contains address first
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\newcommand{\raRArgH}{4}\newcommand{\raRaArgH}{5}\newcommand{\raAArgH}{7}
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% Immediate first
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\newcommand{\immRArgH}{8}\newcommand{\immRaArgH}{9}\newcommand{\immAArgH}{B}
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% Address first
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\newcommand{\aRArgH}{C}\newcommand{\aRaArgH}{D}\newcommand{\aAArgH}{F}
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%Width hex codes
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\newcommand{\byteWidthH}{1}\newcommand{\shortWidthH}{2}\newcommand{\intWidthH}{3}
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\begin{figure}
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\begin{tabularx}{\textwidth}{ | c | c | X | }
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\hline
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Type & Pattern & Description \\
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\hline
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Register & 00 & Operand is a register \\
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{[Register]} & 01 & Operand is a 32-bit address stored in a register \\
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Immediate & 10 & Operand is an 8-, 16- or 32-bit value \\
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{[Immediate]} & 11 & Operand is treated as a 32-bit address \\
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\hline
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\multicolumn{3}{ | X | }{Source Operand Width Patterns} \\
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\hline
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Invalid & 00 & Source must have a width \\
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8-bit & 01 & 8-bit wide source \\
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16-bit & 10 & 16-bit wide source \\
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32-bit & 11 & 32-bit wide source \\
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\hline
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\end{tabularx}
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\caption{Operand Type and Width Bit Patterns}
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\label{fig:ModeSettingEncodingFigure} % https://www.overleaf.com/learn/latex/Referencing_Figures
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\end{figure}
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\clearpage
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\section{Instructions}
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The /r represents a byte that specifies a register. /immX is for the immediate data type, where \textit{X} defines the width, which are 8, 16, or 32 bits. An address is defined as /addrX with the \textit{X} denoting the size of the data that will be written which can be 8, 16 or 32 bits, with the address itself always being 32-bits wide.
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\subsection{Add}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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01 \rRArgH\byteWidthH & add byte /r, /r & /r & /r \\
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01 \rRArgH\shortWidthH & add short /r, /r & /r & /r \\
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01 \rRArgH\intWidthH & add (int) /r, /r & /r & /r \\
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01 \immRArgH\byteWidthH & add byte /imm8, /r & /imm8 & /r \\
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01 \immRArgH\shortWidthH & add short /imm16, /r & /imm16 & /r \\
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01 \immRArgH\intWidthH & add (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Adds two unsigned values together, the source (operand one) and the destination (operand two), storing the result in destination. The overflow flag (OF) is set if the result is less than the source and the zero flag (ZF) is set when the result of addition is zero.
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\paragraph{Flags Affected} OF and ZF.
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\subsection{Sub}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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02 \rRArgH\byteWidthH & sub byte /r, /r & /r & /r \\
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02 \rRArgH\shortWidthH & sub short /r, /r & /r & /r \\
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02 \rRArgH\intWidthH & sub (int) /r, /r & /r & /r \\
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02 \immRArgH\byteWidthH & sub byte /imm8, /r & /imm8 & /r \\
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02 \immRArgH\shortWidthH & sub short /imm16, /r & /imm16 & /r \\
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02 \immRArgH\intWidthH & sub (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Subtracts two unsigned values, the source (operand one) and the destination (operand two), storing the result in destination. The underflow flag (UF) is set if the result is greater than the source and the zero flag (ZF) is set when the result of subtraction is zero.
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\paragraph{Flags Affected} UF and ZF.
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\subsection{Mul}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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03 \rRArgH\byteWidthH & mul byte /r, /r & /r & /r \\
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03 \rRArgH\shortWidthH & mul short /r, /r & /r & /r \\
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03 \rRArgH\intWidthH & mul (int) /r, /r & /r & /r \\
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03 \immRArgH\byteWidthH & mul byte /imm8, /r & /imm8 & /r \\
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03 \immRArgH\shortWidthH & mul short /imm16, /r & /imm16 & /r \\
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03 \immRArgH\intWidthH & mul (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Multiplies two unsigned values together, the source (operand one) and the destination (operand two), storing the result in destination. The overflow flag (OF) is set if the result is less than the source and the zero flag (ZF) is set when the result of addition is zero.
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\paragraph{Flags Affected} OF and ZF.
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\subsection{Div}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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04 \rRArgH\byteWidthH & div byte /r, /r & /r & /r \\
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04 \rRArgH\shortWidthH & div short /r, /r & /r & /r \\
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04 \rRArgH\intWidthH & div (int) /r, /r & /r & /r \\
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04 \immRArgH\byteWidthH & div byte /imm8, /r & /imm8 & /r \\
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04 \immRArgH\shortWidthH & div short /imm16, /r & /imm16 & /r \\
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04 \immRArgH\intWidthH & div (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Divides two unsigned values, the source (operand one) and the destination (operand two), storing the result in destination. The underflow flag (UF) is set if the result is greater than the source and the zero flag (ZF) is set when the result of subtraction is zero.
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\paragraph{Flags Affected} UF and ZF.
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\subsection{Mov}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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05 \rRArgH\byteWidthH & mov byte /r, /r & /r & /r \\
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05 \rRArgH\shortWidthH & mov short /r, /r & /r & /r \\
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05 \rRArgH\intWidthH & mov (int) /r, /r & /r & /r \\
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05 \rRaArgH\byteWidthH & mov byte /r, [/r] & /r & [/r] \\
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05 \rRaArgH\shortWidthH & mov short /r, [/r] & /r & [/r] \\
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05 \rRaArgH\intWidthH & mov (int) /r, [/r] & /r & [/r] \\
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05 \rAArgH\byteWidthH & mov byte /r, [imm32] & /r & [imm32] \\
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05 \rAArgH\shortWidthH & mov short /r, [imm32] & /r & [imm32] \\
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05 \rAArgH\intWidthH & mov (int) /r, [imm32] & /r & [imm32] \\
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05 \raRArgH\byteWidthH & mov byte [/r], /r & [/r] & /r \\
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05 \raRArgH\shortWidthH & mov short [/r], /r & [/r] & /r \\
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05 \raRArgH\intWidthH & mov (int) [/r], /r & [/r] & /r \\
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05 \raRaArgH\byteWidthH & mov byte [/r], [/r] & [/r] & [/r] \\
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05 \raRaArgH\shortWidthH & mov short [/r], [/r] & [/r] & [/r] \\
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05 \raRaArgH\intWidthH & mov (int) [/r], [/r] & [/r] & [/r] \\
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05 \raAArgH\byteWidthH & mov byte [/r], [imm32] & [/r] & [imm32] \\
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05 \raAArgH\shortWidthH & mov short [/r], [imm32] & [/r] & [imm32] \\
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05 \raAArgH\intWidthH & mov (int) [/r], [imm32] & [/r] & [imm32] \\
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05 \immRArgH\byteWidthH & mov byte imm8, /r & imm8 & /r \\
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05 \immRArgH\shortWidthH & mov short imm16, /r & imm16 & /r \\
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05 \immRArgH\intWidthH & mov (int) imm32, /r & imm32 & /r \\
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05 \immRaArgH\byteWidthH & mov byte imm8, [/r] & imm8 & [/r] \\
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05 \immRaArgH\shortWidthH & mov short imm16, [/r] & imm16 & [/r] \\
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05 \immRaArgH\intWidthH & mov (int) imm32, [/r] & imm32 & [/r] \\
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05 \immAArgH\byteWidthH & mov byte imm8, [imm32] & imm8 & [imm32] \\
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05 \immAArgH\shortWidthH & mov short imm16, [imm32] & imm16 & [imm32] \\
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05 \immAArgH\intWidthH & mov (int) imm32, [imm32] & imm32 & [imm32] \\
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05 \aRArgH\byteWidthH & mov byte [imm32], /r & [imm32] & /r \\
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05 \aRArgH\shortWidthH & mov short [imm32], /r & [imm32] & /r \\
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05 \aRArgH\intWidthH & mov (int) [imm32], /r & [imm32] & /r \\
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05 \aRaArgH\byteWidthH & mov byte [imm32], [/r] & [imm32] & [/r] \\
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05 \aRaArgH\shortWidthH & mov short [imm32], [/r] & [imm32] & [/r] \\
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05 \aRaArgH\intWidthH & mov (int) [imm32], [/r] & [imm32] & [/r] \\
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05 \aAArgH\byteWidthH & mov byte [imm32], [imm32] & [imm32] & [imm32] \\
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05 \aAArgH\shortWidthH & mov short [imm32], [imm32] & [imm32] & [imm32] \\
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05 \aAArgH\intWidthH & mov (int) [imm32], [imm32] & [imm32] & [imm32] \\
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\hline
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\end{tabularx}
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\paragraph{Description} Copies the source (operand one) value to the destination (operand two).
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\paragraph{Flags Affected} None.
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\subsection{AND}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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06 \rRArgH\byteWidthH & and byte /r, /r & /r & /r \\
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06 \rRArgH\shortWidthH & and short /r, /r & /r & /r \\
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06 \rRArgH\intWidthH & and (int) /r, /r & /r & /r \\
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06 \immRArgH\byteWidthH & and byte /imm8, /r & /imm8 & /r \\
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06 \immRArgH\shortWidthH & and short /imm16, /r & /imm16 & /r \\
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06 \immRArgH\intWidthH & and (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Bitwise AND's the source (operand one) with the destination (operand two) storing the result in the destination. If the result of the operation is zero then the Zero Flag (ZF) is set.
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\paragraph{Flags Affected} ZF.
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\subsection{OR}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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07 \rRArgH\byteWidthH & or byte /r, /r & /r & /r \\
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07 \rRArgH\shortWidthH & or short /r, /r & /r & /r \\
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07 \rRArgH\intWidthH & or (int) /r, /r & /r & /r \\
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07 \immRArgH\byteWidthH & or byte /imm8, /r & /imm8 & /r \\
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07 \immRArgH\shortWidthH & or short /imm16, /r & /imm16 & /r \\
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07 \immRArgH\intWidthH & or (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Bitwise OR's the source (operand one) with the destination (operand two) storing the result in the destination. If the result of the operation is zero then the Zero Flag (ZF) is set.
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\paragraph{Flags Affected} ZF.
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\subsection{XOR}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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08 \rRArgH\byteWidthH & xor byte /r, /r & /r & /r \\
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08 \rRArgH\shortWidthH & xor short /r, /r & /r & /r \\
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08 \rRArgH\intWidthH & xor (int) /r, /r & /r & /r \\
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08 \immRArgH\byteWidthH & xor byte /imm8, /r & /imm8 & /r \\
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08 \immRArgH\shortWidthH & xor short /imm16, /r & /imm16 & /r \\
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08 \immRArgH\intWidthH & xor (int) /imm32, /r & /imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Bitwise exclusive OR's (XOR) the source (operand one) with the destination (operand two) storing the result in the destination. If the result of the operation is zero then the Zero Flag (ZF) is set.
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\paragraph{Flags Affected} ZF.
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\subsection{NOT}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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09 & xor /r & /r & None \\
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\hline
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\end{tabularx}
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\paragraph{Description} Bit-wise NOT's the source (operand one) in place.
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\paragraph{Flags Affected} None.
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\subsection{SHL}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0A \immRArgH\byteWidthH & shl byte imm8, /r & imm8 & /r \\
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0A \immRArgH\shortWidthH & shl short imm16, /r & imm16 & /r \\
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0A \immRArgH\intWidthH & shl (int) imm32, /r & imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Shifts the destination (operand two) left \textit{operand one} times in place. If the source is smaller than before the operation the overflow flag (OF) is set. If the result of the operation is zero than the zero flag (ZF) is set.
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\paragraph{Flags Affected} OF and ZF.
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\subsection{SHR}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0B \immRArgH\byteWidthH & shr byte imm8, /r & imm8 & /r \\
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0B \immRArgH\shortWidthH & shr short imm16, /r & imm16 & /r \\
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0B \immRArgH\intWidthH & shr (int) imm32, /r & imm32 & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Shifts the destination (operand two) right \textit{operand one} times in place. If the source is larger than before the operation the underflow flag (UF) is set. If the result of the operation is zero than the zero flag (ZF) is set.
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\paragraph{Flags Affected} UF and ZF.
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\subsection{NOP}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0C & nop & None & None \\
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\hline
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\end{tabularx}
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\paragraph{Description} Performs no operation except for incrementing the program counter by one.
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\paragraph{Flags Affected} None.
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\subsection{CMP}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0D \rRArgH\intWidthH & cmp /r, /r & /r & /r \\
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\hline
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\end{tabularx}
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\paragraph{Description} Compares \textit{operand one} to \textit{operand two} by subtracting \textit{operand one} from \textit{operand two}, updating the status register with the results. If \textit{operand one} is larger than the result, and the result is not zero, the overflow flag (OF) is set. If \textit{operand one} is smaller than the result, and the result is not zero, the underflow flag (UF) is set. And if the result of the subtraction is zero the zero flag (ZF) is set.
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\paragraph{Flags Affected} OF, UF and ZF.
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\subsection{JMP}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0E & jmp /imm32 & /imm32 & None \\
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\hline
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\end{tabularx}
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\paragraph{Description} Jumps unconditionally to the absolute memory address specified in \textit{operand one}.
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\paragraph{Flags Affected} None.
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\subsection{JZ}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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0F & jz /imm32 & /imm32 & None \\
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\hline
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\end{tabularx}
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\paragraph{Description} Jumps to the absolute memory address specified in \textit{operand one} if the zero flag (ZF) is zet.
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\paragraph{Flags Affected} None.
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\subsection{JG}
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\begin{tabularx}{\textwidth}{ | c | X | c | c | }
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\hline
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Opcode & Instruction & Operand One & Operand Two \\
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\hline
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10 & jg /imm32 & /imm32 & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Jumps to the absolute memory address specified in \textit{operand one} if the overflow flag (OF) is zet.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{JL}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
11 & jl /imm32 & /imm32 & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Jumps to the absolute memory address specified in \textit{operand one} if the underflow flag (UF) is zet.
|
|
\paragraph{Flags Affected} None.
|
|
%Maybe these in/out instructions could have a mode setting for choosing the width of the data written to the port.
|
|
\subsection{Outb}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
12 & outb /imm8, /imm8 & /imm8 & /imm8 \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Writes a byte of data to the port number specified in the destination (operand two).
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{Inb}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
13 & inb /imm8, /r & /imm8 & /r \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Reads a byte of data from the port number in source (operand one) to the destination (operand two) register.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{HLT}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
14 & hlt & None & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Halts the processor preventing it from executing the next instruction until an interrupt is received.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{CLI}\label{sec:cli}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
15 & cli & None & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Clears interrupts, preventing the processor from responding to interrupts.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{ENI}\label{sec:eni}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
16 & eni & None & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Enables interrupts, allowing the processor to respond to interrupts.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{INT}\label{sec:int}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
17 & int /imm8 & /imm8 & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Triggers a software interrupt of type \textit{operand one} causing the flow of execution to jump to the registered subroutine in the Interrupt Vector Table at index \textit{operand one}.
|
|
\paragraph{Flags Affected} None.
|
|
\subsection{LIVT}\label{sec:livt}
|
|
\begin{tabularx}{\textwidth}{ | c | X | c | c | }
|
|
\hline
|
|
Opcode & Instruction & Operand One & Operand Two \\
|
|
\hline
|
|
18 & livt /imm32 & /imm32 & None \\
|
|
\hline
|
|
\end{tabularx}
|
|
\paragraph{Description} Registers a 1024 byte block of memory starting at \textit{operand one} as the Interrupt Vector Table.
|
|
\paragraph{Flags Affected} None. |