mirror of
https://github.com/denoland/deno.git
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a1f0796fcc
This commit adds proper support for import assertions and JSON modules. Implementation of "core/modules.rs" was changed to account for multiple possible module types, instead of always assuming that the code is an "ES module". In effect "ModuleMap" now has knowledge about each modules' type (stored via "ModuleType" enum). Module loading pipeline now stores information about expected module type for each request and validates that expected type matches discovered module type based on file's "MediaType". Relevant tests were added to "core/modules.rs" and integration tests, additionally multiple WPT tests were enabled. There are still some rough edges in the implementation and not all WPT were enabled, due to: a) unclear BOM handling in source code by "FileFetcher" b) design limitation of Deno's "FileFetcher" that doesn't download the same module multiple times in a single run Co-authored-by: Kitson Kelly <me@kitsonkelly.com>
309 lines
9.4 KiB
Rust
309 lines
9.4 KiB
Rust
// Copyright 2018-2021 the Deno authors. All rights reserved. MIT license.
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use crate::colors;
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use crate::file_fetcher::get_source_from_data_url;
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use crate::flags::Flags;
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use crate::ops;
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use crate::proc_state::ProcState;
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use crate::version;
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use deno_core::anyhow::anyhow;
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use deno_core::anyhow::Context;
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use deno_core::error::type_error;
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use deno_core::error::AnyError;
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use deno_core::futures::FutureExt;
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use deno_core::located_script_name;
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use deno_core::resolve_url;
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use deno_core::serde::Deserialize;
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use deno_core::serde::Serialize;
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use deno_core::serde_json;
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use deno_core::url::Url;
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use deno_core::v8_set_flags;
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use deno_core::ModuleLoader;
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use deno_core::ModuleSpecifier;
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use deno_runtime::deno_broadcast_channel::InMemoryBroadcastChannel;
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use deno_runtime::deno_tls::create_default_root_cert_store;
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use deno_runtime::deno_tls::rustls_pemfile;
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use deno_runtime::deno_web::BlobStore;
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use deno_runtime::permissions::Permissions;
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use deno_runtime::permissions::PermissionsOptions;
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use deno_runtime::worker::MainWorker;
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use deno_runtime::worker::WorkerOptions;
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use deno_runtime::BootstrapOptions;
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use log::Level;
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use std::env::current_exe;
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use std::fs::File;
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use std::io::BufReader;
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use std::io::Cursor;
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use std::io::Read;
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use std::io::Seek;
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use std::io::SeekFrom;
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use std::iter::once;
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use std::pin::Pin;
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use std::rc::Rc;
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use std::sync::Arc;
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#[derive(Deserialize, Serialize)]
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pub struct Metadata {
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pub argv: Vec<String>,
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pub unstable: bool,
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pub seed: Option<u64>,
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pub permissions: PermissionsOptions,
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pub location: Option<Url>,
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pub v8_flags: Vec<String>,
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pub log_level: Option<Level>,
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pub ca_stores: Option<Vec<String>>,
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pub ca_data: Option<Vec<u8>>,
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pub unsafely_ignore_certificate_errors: Option<Vec<String>>,
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}
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pub const MAGIC_TRAILER: &[u8; 8] = b"d3n0l4nd";
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/// This function will try to run this binary as a standalone binary
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/// produced by `deno compile`. It determines if this is a standalone
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/// binary by checking for the magic trailer string `D3N0` at EOF-12.
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/// The magic trailer is followed by:
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/// - a u64 pointer to the JS bundle embedded in the binary
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/// - a u64 pointer to JSON metadata (serialized flags) embedded in the binary
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/// These are dereferenced, and the bundle is executed under the configuration
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/// specified by the metadata. If no magic trailer is present, this function
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/// exits with `Ok(None)`.
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pub fn extract_standalone(
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args: Vec<String>,
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) -> Result<Option<(Metadata, String)>, AnyError> {
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let current_exe_path = current_exe()?;
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let mut current_exe = File::open(current_exe_path)?;
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let trailer_pos = current_exe.seek(SeekFrom::End(-24))?;
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let mut trailer = [0; 24];
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current_exe.read_exact(&mut trailer)?;
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let (magic_trailer, rest) = trailer.split_at(8);
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if magic_trailer != MAGIC_TRAILER {
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return Ok(None);
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}
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let (bundle_pos, rest) = rest.split_at(8);
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let metadata_pos = rest;
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let bundle_pos = u64_from_bytes(bundle_pos)?;
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let metadata_pos = u64_from_bytes(metadata_pos)?;
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let bundle_len = metadata_pos - bundle_pos;
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let metadata_len = trailer_pos - metadata_pos;
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current_exe.seek(SeekFrom::Start(bundle_pos))?;
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let bundle = read_string_slice(&mut current_exe, bundle_pos, bundle_len)
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.context("Failed to read source bundle from the current executable")?;
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let metadata =
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read_string_slice(&mut current_exe, metadata_pos, metadata_len)
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.context("Failed to read metadata from the current executable")?;
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let mut metadata: Metadata = serde_json::from_str(&metadata).unwrap();
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metadata.argv.append(&mut args[1..].to_vec());
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Ok(Some((metadata, bundle)))
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}
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fn u64_from_bytes(arr: &[u8]) -> Result<u64, AnyError> {
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let fixed_arr: &[u8; 8] = arr
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.try_into()
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.context("Failed to convert the buffer into a fixed-size array")?;
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Ok(u64::from_be_bytes(*fixed_arr))
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}
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fn read_string_slice(
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file: &mut File,
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pos: u64,
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len: u64,
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) -> Result<String, AnyError> {
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let mut string = String::new();
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file.seek(SeekFrom::Start(pos))?;
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file.take(len).read_to_string(&mut string)?;
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// TODO: check amount of bytes read
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Ok(string)
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}
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const SPECIFIER: &str = "file://$deno$/bundle.js";
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struct EmbeddedModuleLoader(String);
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impl ModuleLoader for EmbeddedModuleLoader {
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fn resolve(
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&self,
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specifier: &str,
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_referrer: &str,
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_is_main: bool,
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) -> Result<ModuleSpecifier, AnyError> {
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if let Ok(module_specifier) = resolve_url(specifier) {
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if get_source_from_data_url(&module_specifier).is_ok()
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|| specifier == SPECIFIER
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{
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return Ok(module_specifier);
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}
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}
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Err(type_error(
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"Self-contained binaries don't support module loading",
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))
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}
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fn load(
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&self,
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module_specifier: &ModuleSpecifier,
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_maybe_referrer: Option<ModuleSpecifier>,
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_is_dynamic: bool,
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) -> Pin<Box<deno_core::ModuleSourceFuture>> {
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let module_specifier = module_specifier.clone();
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let is_data_uri = get_source_from_data_url(&module_specifier).ok();
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let code = if let Some((ref source, _)) = is_data_uri {
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source.to_string()
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} else {
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self.0.to_string()
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};
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async move {
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if is_data_uri.is_none() && module_specifier.to_string() != SPECIFIER {
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return Err(type_error(
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"Self-contained binaries don't support module loading",
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));
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}
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Ok(deno_core::ModuleSource {
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code,
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module_type: deno_core::ModuleType::JavaScript,
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module_url_specified: module_specifier.to_string(),
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module_url_found: module_specifier.to_string(),
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})
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}
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.boxed_local()
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}
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}
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fn metadata_to_flags(metadata: &Metadata) -> Flags {
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let permissions = metadata.permissions.clone();
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Flags {
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argv: metadata.argv.clone(),
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unstable: metadata.unstable,
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seed: metadata.seed,
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location: metadata.location.clone(),
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allow_env: permissions.allow_env,
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allow_hrtime: permissions.allow_hrtime,
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allow_net: permissions.allow_net,
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allow_ffi: permissions.allow_ffi,
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allow_read: permissions.allow_read,
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allow_run: permissions.allow_run,
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allow_write: permissions.allow_write,
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v8_flags: metadata.v8_flags.clone(),
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log_level: metadata.log_level,
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ca_stores: metadata.ca_stores.clone(),
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..Default::default()
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}
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}
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pub async fn run(
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source_code: String,
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metadata: Metadata,
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) -> Result<(), AnyError> {
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let flags = metadata_to_flags(&metadata);
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let main_module = resolve_url(SPECIFIER)?;
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let ps = ProcState::build(flags).await?;
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let permissions = Permissions::from_options(&metadata.permissions);
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let blob_store = BlobStore::default();
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let broadcast_channel = InMemoryBroadcastChannel::default();
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let module_loader = Rc::new(EmbeddedModuleLoader(source_code));
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let create_web_worker_cb = Arc::new(|_| {
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todo!("Worker are currently not supported in standalone binaries");
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});
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// Keep in sync with `main.rs`.
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v8_set_flags(
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once("UNUSED_BUT_NECESSARY_ARG0".to_owned())
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.chain(metadata.v8_flags.iter().cloned())
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.collect::<Vec<_>>(),
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);
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let mut root_cert_store = ps
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.root_cert_store
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.clone()
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.unwrap_or_else(create_default_root_cert_store);
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if let Some(cert) = metadata.ca_data {
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let reader = &mut BufReader::new(Cursor::new(cert));
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match rustls_pemfile::certs(reader) {
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Ok(certs) => {
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root_cert_store.add_parsable_certificates(&certs);
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}
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Err(e) => {
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return Err(anyhow!(
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"Unable to add pem file to certificate store: {}",
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e
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));
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}
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}
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}
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let options = WorkerOptions {
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bootstrap: BootstrapOptions {
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apply_source_maps: false,
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args: metadata.argv,
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cpu_count: num_cpus::get(),
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debug_flag: metadata.log_level.map_or(false, |l| l == log::Level::Debug),
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enable_testing_features: false,
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location: metadata.location,
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no_color: !colors::use_color(),
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runtime_version: version::deno(),
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ts_version: version::TYPESCRIPT.to_string(),
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unstable: metadata.unstable,
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},
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extensions: vec![],
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user_agent: version::get_user_agent(),
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unsafely_ignore_certificate_errors: metadata
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.unsafely_ignore_certificate_errors,
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root_cert_store: Some(root_cert_store),
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seed: metadata.seed,
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js_error_create_fn: None,
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create_web_worker_cb,
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maybe_inspector_server: None,
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should_break_on_first_statement: false,
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module_loader,
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get_error_class_fn: Some(&get_error_class_name),
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origin_storage_dir: None,
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blob_store,
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broadcast_channel,
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shared_array_buffer_store: None,
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compiled_wasm_module_store: None,
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};
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let mut worker = MainWorker::bootstrap_from_options(
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main_module.clone(),
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permissions,
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options,
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);
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// TODO(@AaronO): move to a JsRuntime Extension passed into options
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{
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let js_runtime = &mut worker.js_runtime;
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js_runtime
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.op_state()
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.borrow_mut()
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.put::<ProcState>(ps.clone());
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ops::errors::init(js_runtime);
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ops::runtime_compiler::init(js_runtime);
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js_runtime.sync_ops_cache();
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}
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worker.execute_main_module(&main_module).await?;
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worker.execute_script(
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&located_script_name!(),
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"window.dispatchEvent(new Event('load'))",
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)?;
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worker.run_event_loop(true).await?;
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worker.execute_script(
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&located_script_name!(),
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"window.dispatchEvent(new Event('unload'))",
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)?;
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std::process::exit(0);
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}
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fn get_error_class_name(e: &AnyError) -> &'static str {
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deno_runtime::errors::get_error_class_name(e).unwrap_or_else(|| {
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panic!(
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"Error '{}' contains boxed error of unsupported type:{}",
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e,
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e.chain()
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.map(|e| format!("\n {:?}", e))
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.collect::<String>()
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);
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})
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}
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