use crate::{ContentKey, Scheme};
use aes::Aes128;
use aes::cipher::{BlockCipherEncrypt, KeyInit};
const COMMON_SYSTEM_ID: [u8; 16] = [
0x10, 0x77, 0xef, 0xec, 0xc0, 0xb2, 0x4d, 0x02, 0xac, 0xe3, 0x3c, 0x1e, 0x52, 0xe2, 0xfb, 0x4b,
];
const WIDEVINE_SYSTEM_ID: [u8; 16] = [
0xed, 0xef, 0x8b, 0xa9, 0x79, 0xd6, 0x4a, 0xce, 0xa3, 0xc8, 0x27, 0xdc, 0xd5, 0x1d, 0x21, 0xed,
];
const PLAYREADY_SYSTEM_ID: [u8; 16] = [
0x9a, 0x04, 0xf0, 0x79, 0x98, 0x40, 0x42, 0x86, 0xab, 0x92, 0xe6, 0x5b, 0xe0, 0x88, 0x5f, 0x95,
];
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub enum ProtectionSystem {
Common,
Widevine,
PlayReady,
}
impl ProtectionSystem {
pub fn parse(name: &str) -> Option<Self> {
match name.trim().to_ascii_lowercase().as_str() {
"common" | "commonsystem" => Some(Self::Common),
"widevine" => Some(Self::Widevine),
"playready" => Some(Self::PlayReady),
_ => None,
}
}
pub fn system_id(self) -> [u8; 16] {
match self {
Self::Common => COMMON_SYSTEM_ID,
Self::Widevine => WIDEVINE_SYSTEM_ID,
Self::PlayReady => PLAYREADY_SYSTEM_ID,
}
}
pub fn pssh_box(self, key: &ContentKey, scheme: Scheme) -> Vec<u8> {
self.pssh_box_ex(key, scheme, None)
}
pub fn pssh_box_ex(
self,
key: &ContentKey,
scheme: Scheme,
playready_extra: Option<&str>,
) -> Vec<u8> {
match self {
Self::Common => assemble(self.system_id(), 1, &[key.kid], &[]),
Self::Widevine => assemble(self.system_id(), 0, &[], &widevine_data(key, scheme)),
Self::PlayReady => {
assemble(self.system_id(), 0, &[], &playready_data(key, scheme, playready_extra))
}
}
}
}
fn assemble(system_id: [u8; 16], version: u8, kids: &[[u8; 16]], data: &[u8]) -> Vec<u8> {
let mut body = Vec::new();
body.extend_from_slice(b"pssh");
body.push(version);
body.extend_from_slice(&[0, 0, 0]); body.extend_from_slice(&system_id);
if version >= 1 {
body.extend_from_slice(&(kids.len() as u32).to_be_bytes());
for kid in kids {
body.extend_from_slice(kid);
}
}
body.extend_from_slice(&(data.len() as u32).to_be_bytes());
body.extend_from_slice(data);
let mut out = ((body.len() + 4) as u32).to_be_bytes().to_vec();
out.extend_from_slice(&body);
out
}
fn widevine_data(key: &ContentKey, scheme: Scheme) -> Vec<u8> {
let mut data = Vec::new();
data.push(0x12); data.push(0x10); data.extend_from_slice(&key.kid);
data.push(0x48); put_varint(u32::from_be_bytes(scheme.scheme_type()), &mut data);
data
}
fn put_varint(mut value: u32, out: &mut Vec<u8>) {
loop {
let byte = (value & 0x7f) as u8;
value >>= 7;
if value == 0 {
out.push(byte);
return;
}
out.push(byte | 0x80);
}
}
fn playready_data(key: &ContentKey, scheme: Scheme, extra: Option<&str>) -> Vec<u8> {
let kid = playready_guid(&key.kid);
let kid_b64 = base64(&kid);
let checksum_b64 = base64(&playready_checksum(&key.key, &kid));
let algid = if scheme.is_cbc() { "AESCBC" } else { "AESCTR" };
let extra = extra.unwrap_or("");
let xml = format!(
"<WRMHEADER xmlns=\"http://schemas.microsoft.com/DRM/2007/03/PlayReadyHeader\" \
version=\"4.0.0.0\"><DATA><PROTECTINFO><KEYLEN>16</KEYLEN><ALGID>{algid}</ALGID>\
</PROTECTINFO><KID>{kid_b64}</KID><CHECKSUM>{checksum_b64}</CHECKSUM>{extra}</DATA></WRMHEADER>"
);
let header: Vec<u8> = xml.encode_utf16().flat_map(u16::to_le_bytes).collect();
let record_len = header.len() as u16;
let total_len = 4 + 2 + 2 + 2 + header.len();
let mut obj = Vec::with_capacity(total_len);
obj.extend_from_slice(&(total_len as u32).to_le_bytes());
obj.extend_from_slice(&1u16.to_le_bytes()); obj.extend_from_slice(&1u16.to_le_bytes()); obj.extend_from_slice(&record_len.to_le_bytes());
obj.extend_from_slice(&header);
obj
}
fn playready_guid(kid: &[u8; 16]) -> [u8; 16] {
let mut g = *kid;
g.swap(0, 3);
g.swap(1, 2);
g.swap(4, 5);
g.swap(6, 7);
g
}
fn playready_checksum(key: &[u8; 16], guid_kid: &[u8; 16]) -> [u8; 8] {
let cipher = Aes128::new_from_slice(key).expect("AES-128 key is 16 bytes");
let mut block = (*guid_kid).into();
cipher.encrypt_block(&mut block);
block[..8].try_into().unwrap()
}
fn base64(input: &[u8]) -> String {
const ALPHABET: &[u8; 64] = b"ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
let mut out = String::with_capacity(input.len().div_ceil(3) * 4);
for chunk in input.chunks(3) {
let b = [chunk[0], *chunk.get(1).unwrap_or(&0), *chunk.get(2).unwrap_or(&0)];
let n = (u32::from(b[0]) << 16) | (u32::from(b[1]) << 8) | u32::from(b[2]);
out.push(ALPHABET[(n >> 18 & 0x3f) as usize] as char);
out.push(ALPHABET[(n >> 12 & 0x3f) as usize] as char);
out.push(if chunk.len() > 1 { ALPHABET[(n >> 6 & 0x3f) as usize] as char } else { '=' });
out.push(if chunk.len() > 2 { ALPHABET[(n & 0x3f) as usize] as char } else { '=' });
}
out
}
#[cfg(test)]
mod tests {
use super::*;
const KID: [u8; 16] = [
0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0x00, 0xaa, 0xbb, 0xcc, 0xdd, 0xee,
0xff,
];
const KEY: [u8; 16] = [
0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee,
0xff,
];
fn key() -> ContentKey {
ContentKey { kid: KID, key: KEY }
}
fn hex(bytes: &[u8]) -> String {
bytes.iter().map(|b| format!("{b:02x}")).collect()
}
#[test]
fn base64_matches_known_vectors() {
assert_eq!(base64(b""), "");
assert_eq!(base64(b"f"), "Zg==");
assert_eq!(base64(b"fo"), "Zm8=");
assert_eq!(base64(b"foo"), "Zm9v");
assert_eq!(base64(b"foobar"), "Zm9vYmFy");
}
#[test]
fn common_pssh_matches_shaka() {
let got = ProtectionSystem::Common.pssh_box(&key(), Scheme::Cenc);
assert_eq!(
hex(&got),
"0000003470737368010000001077efecc0b24d02ace33c1e52e2fb4b\
0000000111223344556677889900aabbccddeeff00000000"
);
}
#[test]
fn widevine_pssh_matches_shaka() {
let got = ProtectionSystem::Widevine.pssh_box(&key(), Scheme::Cenc);
assert_eq!(
hex(&got),
"000000387073736800000000edef8ba979d64acea3c827dcd51d21ed\
00000018121011223344556677889900aabbccddeeff48e3dc959b06"
);
}
#[test]
fn playready_pssh_matches_shaka() {
let got = ProtectionSystem::PlayReady.pssh_box(&key(), Scheme::Cenc);
let expected = concat!(
"0000022670737368000000009a04f07998404286ab92e65be0885f9500000206060200000100010",
"0fc013c00570052004d00480045004100440045005200200078006d006c006e0073003d002200680",
"07400740070003a002f002f0073006300680065006d00610073002e006d006900630072006f0073",
"006f00660074002e0063006f006d002f00440052004d002f00320030003000370",
"02f00300033002f0050006c0061007900520065006100640079004800650061006",
"4006500720022002000760065007200730069006f006e003d00220034002e0030",
"002e0030002e00300022003e003c0044004100540041003e003c00500052004f005",
"40045004300540049004e0046004f003e003c004b00450059004c0045004e003e0",
"0310036003c002f004b00450059004c0045004e003e003c0041004c00470049004",
"4003e004100450053004300540052003c002f0041004c004700490044003e003c0",
"02f00500052004f00540045004300540049004e0046004f003e003c004b0049004",
"4003e00520044004d006900450057005a0056006900480065005a0041004b00710",
"037007a004e00330075002f0077003d003d003c002f004b00490044003e003c004",
"3004800450043004b00530055004d003e00350041006100550053004600700056",
"004800640030003d003c002f0043004800450043004b00530055004d003e003c00",
"2f0044004100540041003e003c002f00570052004d004800450041004400450052003e00",
);
assert_eq!(hex(&got), expected);
}
#[test]
fn widevine_protection_scheme_tracks_fourcc() {
let cenc = ProtectionSystem::Widevine.pssh_box(&key(), Scheme::Cenc);
let cbcs = ProtectionSystem::Widevine.pssh_box(&key(), Scheme::Cbcs);
assert_ne!(cenc, cbcs);
let kid_prefix = hex(&[&[0x12, 0x10][..], &KID].concat());
assert!(hex(&cenc).contains(&kid_prefix) && hex(&cbcs).contains(&kid_prefix));
}
#[test]
fn parse_is_case_insensitive() {
assert_eq!(ProtectionSystem::parse("Widevine"), Some(ProtectionSystem::Widevine));
assert_eq!(ProtectionSystem::parse("PLAYREADY"), Some(ProtectionSystem::PlayReady));
assert_eq!(ProtectionSystem::parse("commonsystem"), Some(ProtectionSystem::Common));
assert_eq!(ProtectionSystem::parse("nope"), None);
}
}