use crate::object::Bundle; use toml::{Table, Value}; const EMPTY_CONFIG: &str = include_str!("mappings/empty.toml"); const NROM_CONFIG: &str = include_str!("mappings/nrom.toml"); const NROM65_CONFIG: &str = include_str!("mappings/nrom65.toml"); const UXROM_CONFIG: &str = include_str!("mappings/unrom.toml"); /// The type of section that a Mapping represents. #[derive(Debug, Clone, Eq, Ord, PartialEq, PartialOrd)] pub enum SectionType { /// The 16 initial bytes describing the header of the ROM file. Header, /// Bank to be stored in PRG ROM with a size multiple of 8KB. PrgRom, /// Bank to be stored in CHR ROM with a size multiple of 4KB. ChrRom, } /// A segment inside of a memory mapping, used to organize the code inside of a /// given memory mapping. Note that a segment does not do anything else: it's /// just about organizing code inside of a mapping. It doesn't deal with how to /// fill a memory region, or where it starts in memory, or anything like that. #[derive(Debug, Clone, Eq, Ord, PartialEq, PartialOrd)] pub struct Segment { /// Name of the segment. pub name: String, pub offset: usize, pub len: usize, /// Bundles that have been generated when assembling the nodes that have /// been parsed by a previous step. pub bundles: Vec, } impl From<&str> for Segment { fn from(name: &str) -> Self { Segment { name: name.to_string(), offset: 0, len: 0, bundles: vec![], } } } impl Segment { /// Returns the length of the segment by counting the bundles that have been // pushed so far into the segment. pub fn len(&self) -> usize { self.bundles .iter() .fold(0, |acc, bundle| acc + bundle.size as usize) } /// Returns true if the given segment has no bundles in it, false otherwise. pub fn is_empty(&self) -> bool { self.len() == 0 } } /// A region in memory which has one or more segments in it, which in turn have /// the bundles that are to be generated in the end of an assembling operation. #[derive(Debug, Clone, Eq, Ord, PartialEq, PartialOrd)] pub struct Mapping { /// Name of the mapping. pub name: String, /// Address where the mapping will start when loaded on the /// console/emulator. This is the address where instructions like `jmp` or /// labels will rely on. Hence, it's not the address of the ROM file itself, /// but the effective address where it will be loaded. pub start: u16, /// Size of the mapping. Note that this depends on the `section_type` value, /// which is: exactly 0x10 for a header, multiples of 0x4000 for prg_rom, /// and multiples of 0x2000 for chr_rom. pub size: usize, /// The total number of bytes that have been pushed across all its segments. pub offset: usize, /// Optional value to fill the mapping if the end size is lower than the /// value on `size`. Set to `None` to skip filling the memory region for /// this mapping. pub fill: Option, /// Segments for the memory region. pub segments: Vec, /// What kind of memory region is being described by this mapping. pub section_type: SectionType, } /// Returns a vector corresponding to the configuration of mappings that is /// expected for the given `name`. This `name` can either be an already known /// identifier (e.g. "nrom"), or a file path. Returns an error if the /// configuration cannot be parsed or there's something wrong about it. pub fn get_mapping_configuration(name: &str) -> Result, String> { let configuration = if std::fs::exists(name).unwrap_or(false) { match std::fs::read_to_string(name) { Ok(contents) => load_configuration_for(contents.as_str())?, Err(_) => return Err(format!("could not read '{}'", name)), } } else { let text = match name.to_lowercase().as_str() { "empty" => EMPTY_CONFIG, "nrom" => NROM_CONFIG, "nrom65" => NROM65_CONFIG, "uxrom" | "unrom" => UXROM_CONFIG, _ => return Err("mapper configuration is not known".to_string()), }; load_configuration_for(text)? }; validate_configuration(&configuration)?; Ok(configuration) } // Returns the integer value for the mandatory integer contained in `value` that // is named `prop_name` under the `section_name` section. This integer has to be // lesser or equal to the `max` value. fn get_integer( section_name: &String, prop_name: &str, value: Option<&Value>, max: usize, ) -> Result { if value.is_none() { return Err(format!( "you have to define a value for '{}' in '{}'", section_name, prop_name )); } if !value.unwrap().is_integer() { return Err(format!( "value for '{}' in '{}' has to be an integer value", section_name, prop_name )); } let val = value.unwrap().as_integer().unwrap() as usize; if val > max { return Err(format!( "value for '{}' in '{}' is too big", prop_name, section_name )); } Ok(val) } // Get a `SectionType` out of the given mandatory `value` which is under the // `section_name`. fn parse_section_type(section_name: &String, value: Option<&Value>) -> Result { match value { Some(v) => { if !v.is_str() { return Err(format!( "'section_type' in '{}' has to be a string", section_name )); } match v.as_str().unwrap().to_lowercase().as_str() { "header" => Ok(SectionType::Header), "prgrom" => Ok(SectionType::PrgRom), "chrrom" => Ok(SectionType::ChrRom), _ => Err(format!( "bad value for 'section_type' in '{}'", section_name )), } } None => Err(format!( "you have to define 'section_type' in '{}'", section_name )), } } // Returns a vector of segments which are contained inside of the mandatory // `value`. fn get_segments(section_name: &String, value: Option<&Value>) -> Result, String> { if value.is_none() { return Err(format!( "you have to define a value for 'segments' in '{}'", section_name )); } if !value.unwrap().is_array() { return Err(format!( "value for 'segments' in '{}' has to be an array value", section_name )); } let mut res = vec![]; for item in value.unwrap().as_array().unwrap() { if !item.is_str() { return Err(format!( "every item in 'segments' has to be a string ({})", section_name )); } res.push(Segment::from(item.as_str().unwrap())); } Ok(res) } // Returns a vector of mappings that is retrieved by parsing the given text. fn load_configuration_for(text: &str) -> Result, String> { // Obtain the raw data by parsing the given text as a toml::Table. let table = match text.parse::() { Ok(t) => t, Err(e) => return Err(format!("could not parse configuration file: {}", e)), }; // Each section of the configuration file is a mapping, where the title is // simply the name of it. let mut mappings = vec![]; for (name, value) in table { let start = get_integer(&name, "start", value.get("start"), u16::MAX as usize)? as u16; let size = get_integer(&name, "size", value.get("size"), u16::MAX as usize)?; let fill = match value.get("fill") { Some(_) => Some(get_integer(&name, "fill", value.get("fill"), u8::MAX as usize)? as u8), None => None, }; let section_type = parse_section_type(&name, value.get("section_type"))?; let segments = get_segments(&name, value.get("segments"))?; mappings.push(Mapping { name, start, size, offset: 0, fill, section_type, segments, }); } Ok(mappings) } // Ensure that the given mappings conform to a minimum standard. fn validate_configuration(mappings: &[Mapping]) -> Result<(), String> { if mappings.is_empty() { return Err("We need at least one segment defined, the header".to_string()); } if mappings.first().unwrap().segments.is_empty() { return Err("We need at least one segment defined, the header".to_string()); } if mappings.first().unwrap().section_type != SectionType::Header { return Err("First mapping section must be the header".to_string()); } if mappings.first().unwrap().size != 0x10 { return Err("The header must be exactly 16 bytes long".to_string()); } let prg_rom_len = mappings .iter() .filter(|m| m.section_type == SectionType::PrgRom) .fold(0, |acc, x| acc + x.size); if prg_rom_len < 0x4000 { return Err("PRG ROM must be at least 8KB long".to_string()); } if prg_rom_len % 0x4000 != 0 { return Err("PRG ROM must be formed by banks of exactly 8KB".to_string()); } Ok(()) } /// Perform some sanity checks on the given `mappings`. Only call this function /// after all bundles have been produced. pub fn validate(mappings: &[Mapping]) -> Result<(), String> { // Guaranteed by `crate::mapping::assert` to be the header. let header: &Segment = mappings.first().unwrap().segments.first().unwrap(); // Header must have at least six bytes with proper information provided by // the programmer. if header.len() < 6 { return Err(String::from("The header must contain at least 6 bytes")); } // Now check that the length of the evaluated data matches the criteria // stated on the ROM header that was evaluated as well. let (header_prg_rom_size, header_chr_rom_size) = parse_header(header)?; let prg_rom_len = mappings .iter() .filter(|m| m.section_type == SectionType::PrgRom) .fold(0, |acc, x| { acc + x.segments.iter().fold(0, |a, y| a + y.len()) }); let chr_rom_len = mappings .iter() .filter(|m| m.section_type == SectionType::ChrRom) .fold(0, |acc, x| { acc + x.segments.iter().fold(0, |a, y| a + y.len()) }); if header_prg_rom_size < prg_rom_len { return Err(format!( "PRG ROM size is expected to by {} bytes long, but a total of {} bytes were evaluated", header_prg_rom_size, prg_rom_len )); } if header_chr_rom_size < chr_rom_len { return Err(format!( "CHR ROM size is expected to by {} bytes long, but a total of {} bytes were evaluated", header_chr_rom_size, chr_rom_len )); } Ok(()) } // Returns a tuple with the sizes for PRG and CHR ROM as described from the // computed header. This also does some sanity checks on the header. fn parse_header(header: &Segment) -> Result<(usize, usize), String> { let mut header_it = header.bundles.clone().into_iter(); // Validate the magic string: 'N', 'E', 'S', $1A if header_it.next().unwrap().bytes[0] != b'N' { return Err(String::from("First byte of the header must be 'N'")); } if header_it.next().unwrap().bytes[0] != b'E' { return Err(String::from("Second byte of the header must be 'E'")); } if header_it.next().unwrap().bytes[0] != b'S' { return Err(String::from("Third byte of the header must be 'S'")); } if header_it.next().unwrap().bytes[0] != 26 { return Err(String::from( "Fourth byte of the header must be the MS-DOS termination character", )); } Ok(( header_it.next().unwrap().bytes[0] as usize * 0x4000, header_it.next().unwrap().bytes[0] as usize * 0x2000, )) } /// Returns the offset of the segment indexed by `segment_index` inside of /// `mapping`. That is, it returns back at which byte the given segment is going /// to be placed inside of the given mapping. /// /// NOTE: this function is only useful if you already know that all the segments /// on the given mapping have a definitive size (i.e. they will not change in /// the future). pub fn segment_offset(mapping: &Mapping, segment_index: usize) -> u16 { let mut count = 0; for (idx, segment) in mapping.segments.iter().enumerate() { if idx >= segment_index { return count; } count += segment.offset as u16; } count }