+++ title = "LC-2" weight = 100 +++ LC-2 is the first architecture in the Little Computer family that looks like a real ISA. Built as a successor to the minimalist LC-1,[^lc1-successor] it introduced eight general-purpose registers and a three-state condition code system, the foundation that every subsequent architecture in the family would inherit.[^lc-family-evolution] [^lc1-successor]: {{< cite-ics edition="1" chapter="1. Welcome Aboard" page="2" >}} [^lc-family-evolution]: {{< cite-talk author="Patt, Yale N." title="LC-3, x86, or MIPS: The First ISA for Students to Study" type="Keynote" event="Workshop on Computer Architecture Education" location="San Diego, CA" date="June 9, 2007" url="https://www.csc2.ncsu.edu/faculty/efg/wcae/ISCA2007/FinalProgram.html" format="PowerPoint presentation" accessed="June 8, 2026" url-archived="https://web.archive.org/web/20250129103001/https://www.csc2.ncsu.edu/faculty/efg/wcae/ISCA2007/FinalProgram.html" url-archived-date="January 29, 2025" >}} LC-2 operates on a 16-bit data bus and a 16-bit address bus, giving a linear address space of 65,536 word-sized locations, 128 KiB of addressable memory in total. Every instruction is exactly 16 bits wide, with the top 4 bits reserved for the opcode. This fixed encoding means that the opcode, operands, and any immediate values must all fit within those 16 bits, a constraint that shapes the design of every instruction in the set.[^lc2-overview] [^lc2-overview]: {{< cite-ics edition="1" chapter="Appendix A: The LC-2 ISA" page="429" >}} ## Registers LC-2 has a small but complete set of registers. All registers are 16 bits wide, matching the data bus width of the architecture. ### General-Purpose Registers LC-2 provides eight general-purpose registers, named R0 through R7. They are symmetric: no register has a special hardware role, and any of them can be used as a source or destination in any instruction that operates on registers.[^lc2-overview] That said, two registers have a conventional role: R6 is typically used as the stack pointer,[^lc2-stack] [^lc2-rti] and R7 is used by some instructions to store the return address.[^lc2-jsr-jsrr] [^lc2-ret] [^lc2-trap] See the [instructions page](instructions/) for details. [^lc2-stack]: {{< cite-ics edition="1" chapter="10.1.3 Implementation in Memory" page="197" page-end="200" >}} [^lc2-rti]: {{< cite-ics edition="1" chapter="Appendix A.3 The Instruction Set" page="444" >}} [^lc2-jsr-jsrr]: {{< cite-ics edition="1" chapter="Appendix A.3 The Instruction Set" page="436" page-end="437" >}} [^lc2-ret]: {{< cite-ics edition="1" chapter="Appendix A.3 The Instruction Set" page="443" >}} [^lc2-trap]: {{< cite-ics edition="1" chapter="Appendix A.3 The Instruction Set" page="448" >}} ### Special-Purpose Registers Beyond the general-purpose registers, LC-2 has some special-purpose registers that control the execution of the processor. None of these registers are directly accessible from assembly, with the exception of the CC, which is implicitly read by conditional branch instructions. * The **Program Counter** (**PC**) holds the address of the next instruction to be fetched from memory. It is incremented by 1 after each fetch, before the instruction is executed, so that by the time the instruction runs, the PC already points to the following one.[^lc2-fetch] [^lc2-fetch]: {{< cite-ics edition="1" chapter="4.2.2 The Instruction Cycle" page="82" page-end="83" >}} * The **Instruction Register** (**IR**) holds the instruction currently being executed. After the PC is used to fetch an instruction from memory, the instruction is loaded into the IR, where it remains for the duration of the decode and execute phases.[^lc2-fetch] * The **Memory Address Register** (**MAR**) holds the address of the memory location to be accessed. Before any memory operation, the address is loaded into the MAR, which then drives the address bus during the read or write cycle.[^lc2-memory] [^lc2-memory]: {{< cite-ics edition="1" chapter="4.1.1 Memory" page="75" page-end="77" >}} * The **Memory Data Register** (**MDR**) holds the data being transferred to or from memory. On a read, the MDR receives the value fetched from the location addressed by the MAR. On a write, the MDR holds the value to be stored before it is placed onto the data bus.[^lc2-memory] * The **Condition Code** register (**CC**) is a 3-bit register that tracks the sign of the last value written to any general-purpose register. It has three mutually exclusive states: N (negative), Z (zero), and P (positive). Exactly one of the three bits is set at any given time.[^lc2-overview] Not all instructions update the CC. Only instructions that write a value to a general-purpose register will modify it. As an example, an `ADD` instruction that stores its result in R0 will update the CC based on the sign of that result, while a `STR` instruction that writes to memory will not.[^lc2-condition-codes] [^lc2-condition-codes]: {{< cite-ics edition="1" chapter="5.1.7 Condition Codes" page="95" >}} ## Startup Behavior The ISA does not specify a default starting address or reset vector. Where the PC is initialized when the processor powers on or resets is left entirely to the implementation. {{< citation-needed >}} ## Interrupt Support LC-2 provides support for vectored interrupts. When an interrupt is serviced, the processor pushes the current PC and CC onto the stack, then reads an 8-bit value from the interrupting device, called the interrupt vector (`INTV`). `INTV` is zero-extended to 16 bits and used as a memory address into the interrupt table: the value stored at that address is loaded into the PC, transferring control to the interrupt handler.{{< citation-needed >}} The `RTI` (Return from Interrupt) instruction reverses this process, popping the PC and CC from the stack to resume the interrupted program.{{< citation-needed >}} Beyond this, the ISA does not specify the interrupt protocol in further detail: the bus signaling and acknowledgment mechanism used to deliver `INTV` are left to the implementation.