use crate::ast::{Label, Scope, VASMLine}; use crate::parse_error::AssembleError; use crate::vasm_evaluator::eval; use crate::vasm_preprocessor::{Line, LineSource}; use std::collections::BTreeMap; /// This will solve all the .equ directives and return a symbol table of them. /// .equ directives must be able to be solved in order, that is, in terms of /// only preceding .equ directives. Anything else is an error. fn solve_equs(lines: &[VASMLine]) -> Result { let mut scope: Scope = Scope::new(); let line_nums: BTreeMap = BTreeMap::new(); for (line_idx, line) in lines.iter().enumerate() { let line_num = line_idx + 1; if let VASMLine::Equ(Label(name), expr) = line { let value = eval(expr, line_num, &line_nums, &scope) .map_err(|e| AssembleError::EquResolveError(line_num, name.to_string(), e))?; if let Some(_old_value) = scope.insert(name.clone(), value) { return Err(AssembleError::EquDuplicateError(line_num, name.to_string())); } } } Ok(scope) } type LineLengths = BTreeMap; type LineAddresses = BTreeMap; fn arg_length(val: i32) -> usize { if val < 0 { 3 } else if val < 256 { 1 } else if val < 65536 { 2 } else { 3 } } /// This figures out the instruction lengths. We'll do this naively; if we can't /// immediately tell that an instruction needs only a 0/1/2 byte argument (because it's /// a constant, or a .equ that we've solved, or something) then we'll assume it's a /// full 24-bit argument. /// /// - Lines that don't represent output (.equ, .org, etc) have length 0 /// - .db directives are either strings (set aside the length of the string), or /// numbers (set aside three bytes. If it's shorter than that it still may be a variable, /// which might grow to be larger). /// - Opcodes with no argument are 1 byte long. /// - Opcodes with an argument, if that argument is a constant or decidable solely with /// what we know right now (.equs), are however long that argument is. If we don't /// know right now (based on a label, say) then we'll set aside the full 3 bytes (so it's /// 4 bytes long, with the instruction byte). fn measure_instructions(lines: &[VASMLine], scope: &Scope) -> LineLengths { let line_nums: BTreeMap = BTreeMap::new(); let mut lengths = LineLengths::new(); for (line_idx, line) in lines.iter().enumerate() { let line_num = line_idx + 1; match line { VASMLine::Instruction(_, _, None) => { lengths.insert(line_num, 1); } VASMLine::Instruction(_, _, Some(node)) => { let len = eval(node, line_num, &line_nums, scope).map_or(3, arg_length); lengths.insert(line_num, len + 1); } VASMLine::Db(_, _) => { lengths.insert(line_num, 3); } VASMLine::StringDb(_, value) => { lengths.insert(line_num, value.len()); } VASMLine::Org(_, _) | VASMLine::Equ(_, _) | VASMLine::LabelDef(_) | VASMLine::Blank => { lengths.insert(line_num, 0); } VASMLine::Macro(_) => unreachable!(), } } lengths } /// Time to start placing labels. The tricky part here is the .org directives, which can have /// expressions as their arguments. We'll compromise a little bit and say that a .org directive /// can only refer to labels that precede it, so, you can use .orgs to generate (say) a jump table /// but still make it easy for me to figure out what refers to what. /// /// We'll go through the lines, adding each one's length (calculated in measure_instructions) to it. /// If it has a label, we'll store that label's new value to the scope. /// /// But, we'll skip labels that come before .equs: that would make every .equ set to its address, /// rather than the argument. fn place_labels( lines: &[VASMLine], scope: Scope, lengths: &LineLengths, ) -> Result<(LineAddresses, Scope), AssembleError> { let mut scope = scope; let mut address = 0; let mut addresses = LineAddresses::new(); for (line_idx, line) in lines.iter().enumerate() { let line_num = line_idx + 1; if let VASMLine::Org(_, expr) = line { address = eval(expr, line_num, &addresses, &scope) .map_err(|err| AssembleError::OrgResolveError(line_num, err))?; addresses.insert(line_num, address); } if let Some(Label(label)) = line.label() { if !scope.contains_key(label) { scope.insert(label.clone(), address as i32); } } match line { VASMLine::Org(_, _) => {} _ => { addresses.insert(line_num, address); address += *lengths.get(&line_num).unwrap_or(&0) as i32; } } } Ok((addresses, scope)) } fn poke_word(code: &mut Vec, at: usize, word: i32) { let [low, mid, high, _] = word.to_le_bytes(); code[at] = low; code[at + 1] = mid; code[at + 2] = high; } /// Find the lower and upper bounds where this program will place memory fn code_bounds( lines: &[VASMLine], line_addresses: &LineAddresses, line_lengths: &LineLengths, ) -> Result<(usize, usize), AssembleError> { let mut actual_lines = lines .iter() .enumerate() .filter(|(_, line)| !line.zero_length()); let (first_idx, _) = actual_lines.next().ok_or(AssembleError::NoCode)?; let start = line_addresses[&(first_idx + 1)] as usize; let actual_lines = lines .iter() .enumerate() .filter(|(_, line)| !line.zero_length()); let (last_idx, _) = actual_lines.last().unwrap(); let end = line_addresses[&(last_idx + 1)] as usize; let end_length = line_lengths[&(last_idx + 1)]; Ok((start, end + end_length - 1)) } /// Turn an iterable of strs into an assembled binary. This supports macros, but not /// the `#include` macro. The resulting Vec is only as large as it needs to be; if your /// code starts with `.org 0x400` and is five bytes long then the Vec will be five /// bytes long and index 0 will represent 0x400. /// ``` /// assert_eq!( /// vasm::assemble_snippet(vec![".org 0x400", "push 5", "add 7"]), /// Ok(vec![0x01, 0x05, 0x05, 0x07]) /// ) /// ``` pub fn assemble_snippet<'a, T: IntoIterator>( lines: T, ) -> Result, AssembleError> { let mut line_results: Vec> = LineSource::new("_snippet", lines, |_file| { Err(AssembleError::IncludeError( 0, "Including is not supported in assembling snippets".to_string(), )) }) .collect(); if let Some(Err(error)) = line_results.iter().find(|line| line.is_err()) { Err(error.clone()) } else { generate_code( line_results .iter_mut() .map(|line| line.clone().unwrap().line), ) } } /// At this point all lines have addresses and lengths, and all arguments are reduced to /// numeric constants. It's time to generate code. /// /// - Make an array of zeroes, length (end - start) /// - Go through the list of instructions, generating code for them: /// - .db instructions turn into byte values starting at `address - start` /// - Opcodes turn into instruction bytes at `address - start` followed (maybe) by /// arguments. /// - .orgs cause us to skip ahead some in the output /// /// The instruction bytes are formed of six bits defining the instruction followed by two /// bits denoting how many bytes of argument follow it. /// /// Vulcan is a little-endian architecture: multi-byte arguments / .dbs will store the /// least-significant byte at the lowest address, then the more significant bytes following. fn generate_code>(lines: T) -> Result, AssembleError> { let lines: Vec = lines.into_iter().collect(); let scope = solve_equs(&lines)?; let line_lengths = measure_instructions(&lines, &scope); let (line_addresses, scope) = place_labels(&lines, scope, &line_lengths)?; let (start, end) = code_bounds(&lines, &line_addresses, &line_lengths)?; let mut code = vec![0u8; end - start + 1]; let mut current_addr = start; for (line_idx, line) in lines.iter().enumerate() { let line_num = line_idx + 1; match line { VASMLine::Instruction(_, opcode, None) => { code[current_addr - start] = u8::from(*opcode) << 2; current_addr += 1; } VASMLine::Instruction(_, opcode, Some(arg)) => { let arg = eval(arg, line_num, &line_addresses, &scope) .map_err(|err| AssembleError::ArgError(line_num, err))?; let len = line_lengths[&line_num] - 1; let instr = (u8::from(*opcode) << 2) + len as u8; code[current_addr - start] = instr; let [low, mid, high, _] = arg.to_le_bytes(); code[current_addr - start + 1] = low; if len > 1 { code[current_addr - start + 2] = mid } if len > 2 { code[current_addr - start + 3] = high } current_addr += len + 1; } VASMLine::Db(_, arg) => { let arg = eval(arg, line_num, &line_addresses, &scope) .map_err(|err| AssembleError::ArgError(line_num, err))?; poke_word(&mut code, current_addr - start, arg); current_addr += 3; } VASMLine::StringDb(_, string) => { for ch in string.as_bytes() { code[current_addr - start] = *ch; current_addr += 1; } } VASMLine::Org(_, _) => { current_addr = line_addresses[&(line_num + 1)] as usize; } VASMLine::Equ(_, _) | VASMLine::LabelDef(_) | VASMLine::Blank => {} VASMLine::Macro(_) => unreachable!(), } } Ok(code) } #[cfg(test)] mod test { use super::AssembleError::*; use super::*; use crate::ast::VASMLine; use crate::parse_error; use crate::parse_error::EvalError::*; use crate::vasm_parser::parse_vasm_line; fn parse<'a, T: IntoIterator>(lines: T) -> Vec { lines .into_iter() .map(|line| parse_vasm_line(line).unwrap()) .collect() } fn place_labels_pass<'a, T: IntoIterator>( lines: T, ) -> Result<(LineAddresses, Scope), AssembleError> { let parsed_lines = parse(lines); let scope = solve_equs(&parsed_lines).unwrap(); let lengths = measure_instructions(&parsed_lines, &scope); place_labels(&parsed_lines, scope, &lengths) } fn bounds<'a, T: IntoIterator>( lines: T, ) -> Result<(usize, usize), AssembleError> { let parsed_lines = parse(lines); let scope = solve_equs(&parsed_lines).unwrap(); let lengths = measure_instructions(&parsed_lines, &scope); let (line_addresses, _scope) = place_labels(&parsed_lines, scope, &lengths)?; code_bounds(&parsed_lines, &line_addresses, &lengths) } #[test] fn test_equs() { assert_eq!( solve_equs(&parse(["blah: .equ 5+3"])), Ok([("blah".to_string(), 8)].into()) ); assert_eq!( solve_equs(&parse(["blah: .equ 5", "foo: .equ 3"])), Ok([("blah".to_string(), 5), ("foo".to_string(), 3)].into()) ); assert_eq!( solve_equs(&parse(["blah: .equ 5", "foo: .equ blah + 7"])), Ok([("blah".to_string(), 5), ("foo".to_string(), 12)].into()) ); assert_eq!( solve_equs(&parse(["add", "blah: .equ 5"])), Ok([("blah".to_string(), 5)].into()) ); } #[test] fn test_unsolvable_equs() { assert_eq!( solve_equs(&parse(["blah: .equ 5", "foo: .equ banana"])), Err(EquResolveError( 2, "foo".into(), MissingLabel("banana".into()) )) ); assert_eq!( solve_equs(&parse(["blah: .equ foo+3", "foo: .equ 7"])), Err(EquResolveError( 1, "blah".into(), MissingLabel("foo".into()) )) ); assert_eq!( solve_equs(&parse(["blah: .equ 3", "blah: .equ 7"])), Err(EquDuplicateError(2, "blah".into())) ); } #[test] fn test_lengths() { assert_eq!( measure_instructions( &parse(["add", "add 1", "add 500", "add 70000", "add -7"]), &[].into() ), [(1, 1), (2, 2), (3, 3), (4, 4), (5, 4)].into() ); assert_eq!( measure_instructions(&parse([".db 7", ".db \"hello\\0\""]), &[].into()), [(1, 3), (2, 6)].into() ); assert_eq!( measure_instructions(&parse([".org 256", "blah:", "foo: .equ 7"]), &[].into()), [(1, 0), (2, 0), (3, 0)].into() ); assert_eq!( measure_instructions( &parse([".org 0x400", "push 3", "call blah", "hlt", "blah: mul 2"]), &[].into() ), [(1, 0), (2, 2), (3, 4), (4, 1), (5, 2)].into() ); assert_eq!( measure_instructions( &parse(["add 2 + foo", "add 3 + blah", "jmpr @foo"]), &[("blah".to_string(), 300)].into() ), [(1, 4), (2, 3), (3, 4)].into() ); } #[test] fn test_place_labels() { assert_eq!( place_labels_pass(["start: .org 256", "add", "dup"]), Ok(( [(1, 256), (2, 256), (3, 257)].into(), [("start".to_string(), 256)].into() )) ); assert_eq!( place_labels_pass(["push 70000", "dup"]), Ok(([(1, 0), (2, 4)].into(), [].into())) ); assert_eq!( place_labels_pass(["start: .equ 256", "blah: .org start + 4", "add"]), Ok(( [(1, 0), (2, 260), (3, 260)].into(), [("blah".to_string(), 260), ("start".to_string(), 256)].into() )) ); assert_eq!( place_labels_pass(["start: .org 256", "blah: .org start + 10", "add"]), Ok(( [(1, 256), (2, 266), (3, 266)].into(), [("blah".to_string(), 266), ("start".to_string(), 256)].into() )) ); assert_eq!( place_labels_pass([ ".org 1024", "nop 3", "call blah", "hlt", "blah: mul 2", "ret" ]), Ok(( [ (1, 1024), (2, 1024), (3, 1026), (4, 1030), (5, 1031), (6, 1033) ] .into(), [("blah".to_string(), 1031)].into() )) ); } #[test] fn test_unresolvable_orgs() { assert_eq!( place_labels_pass([".org 0xffffff - blah"]), Err(OrgResolveError(1, MissingLabel("blah".into()))) ); assert_eq!( place_labels_pass(["blah: .org blah"]), Err(OrgResolveError(1, MissingLabel("blah".into()))) ); } #[test] fn test_bounds() { assert_eq!(bounds(["add"]), Ok((0, 0))); assert_eq!(bounds(["add -4"]), Ok((0, 3))); assert_eq!(bounds(["add 7"]), Ok((0, 1))); assert_eq!(bounds([".org 0x400", "add"]), Ok((1024, 1024))); assert_eq!( bounds(["start: .equ 1024", ".org start", "add"]), Ok((1024, 1024)) ); assert_eq!( bounds([".org 0x400", "add", ".org 0x800"]), Ok((1024, 1024)) ); assert_eq!( bounds([".org 0x400", "add", ".org 0x800", ".db 5", "blah:"]), Ok((1024, 2050)) ); assert_eq!(bounds([]), Err(AssembleError::NoCode)); assert_eq!(bounds([".org 0x400"]), Err(AssembleError::NoCode)); assert_eq!( bounds(["foo: .equ 3", ".org 0x400"]), Err(AssembleError::NoCode) ); } #[test] fn test_generate_code() { assert_eq!(generate_code(parse(["add"])), Ok(vec![4])); assert_eq!( generate_code(parse([".org 0x400", "add 7"])), Ok(vec![5, 7]) ); assert_eq!(generate_code(parse([".db 57"])), Ok(vec![57, 0, 0])); assert_eq!(generate_code(parse([".db \"AZ\0\""])), Ok(vec![65, 90, 0])); } #[test] fn test_assemble_snippet() { assert_eq!(assemble_snippet(["add"]), Ok(vec![4])); assert_eq!( assemble_snippet(["apple"]), Err(ParseError( 1, parse_error::ParseError::InvalidInstruction("apple".into()) )) ); assert_eq!( assemble_snippet( ".org 0x400 nop 3 call blah hlt blah: mul 2 ret" .lines() ), Ok(vec![ 0x01, 0x03, // nop 3 0x67, 0x07, 0x04, 0x00, // call blah (arg defaults to 3 bytes long) 0x74, // hlt 0x0d, 0x02, // mul 2 0x68 ]) ); } #[test] fn test_relative_blanks() { assert_eq!(assemble_snippet(".org 0x400 nop $+2 nop 0x111111 nop 0x222222".lines()), Ok(vec![ 0x03, 0x08, 0x04, 0x00, 0x03, 0x11, 0x11, 0x11, 0x03, 0x22, 0x22, 0x22 ])) } }