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c66cec2f8b fix: a shared ticker no longer hides one of its two real tokens (closes #276)
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KNOWN_SYMBOLS maps a symbol to the set of contract addresses that bear
it, instead of to one of them.

A ticker is not unique, and the bundled list proves it: seven of its 512
tokens -- FRAX, REUSD, TON, EURE, MSUSD, MUSD and JPYC -- share a symbol
with another bundled entry at a different real contract.  The table is
built from that list first-wins, so it kept the earlier entry of each
pair and the later one was judged a spoof of its own symbol at its own
address.  A user holding any of the seven saw it filtered out of the
balance list, the transaction history and the send token selector, and
so could not spend it through the UI.

Both contracts of every pair come from the same source fetch (CoinGecko,
2026-02-27, decimals verified on-chain), so neither is stale relative to
the other and there is nothing to prefer between them.  The fix is
therefore in the shape of the table rather than in its contents: no
address was picked and none was dropped.  isSpoofedSymbol() asks set
membership where it asked equality, which does not loosen the rule --
every address in a set is one the wallet ships as a real token, and a
contract outside the set is still a spoof.  The native-asset entry stays
null and still means no contract may bear the symbol.

The suite walked KNOWN_SYMBOLS, which is derived from TOKENS, so it
could only assert that the table agreed with itself.  It now also walks
TOKENS asserting that no bundled token is filtered at its own address --
the walk that would have caught this -- pins both contracts of each of
the seven by address, asserts a third contract bearing a shared ticker
is still filtered, and asserts every address the table vouches for is a
bundled token reporting that symbol.
2026-08-12 11:29:40 +00:00
d5595c0151 test: drive the EIP-1193 dApp approval round trips in the browser (closes #183)
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The dApp signing path was the largest unverified surface in the milestone: the
only place where the content script, the inpage provider, the background worker
and the popup all have to work together, with unit tests covering each side in
isolation and none covering the seam.

A page served by the harness speaks EIP-1193 to the real provider -- asserted by
EIP-6963 object identity, not by shape -- and eth_requestAccounts, personal_sign,
eth_signTypedData_v4 and eth_sendTransaction are each driven through to approval
and to rejection.

Every signature is recovered and compared to the approved address; the broadcast
transaction is parsed from the bytes captured at eth_sendRawTransaction and
checked for signer, recipient, value, calldata and chain. A signature that
merely came back would pass against a wrong key, a wrong message or a wrong
chain, so each assertion was demonstrated failing against a variant that is
wrong in exactly one of those ways.

The password is asserted absent from every message crossing the extension
boundary, which gives #157's fix a permanent floor rather than a one-time
review.

Two defects this surfaced are tracked separately: EIP-1193 error codes never
reach the page (#274), and approving a site connection races the popup teardown
(#275). Neither is asserted as correct here. A real dApp with real funds against
mainnet remains an uncovered human pass and is documented as such.
2026-08-12 13:23:57 +02:00
8 changed files with 1330 additions and 15 deletions

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@@ -169,6 +169,34 @@ reserve while sitting on the same side of the estimate, so swapping the two in
what [#154](https://git.eeqj.de/sneak/AutistMask/issues/154) was, and it was
previously correct by reading only.
It also covers the **dApp approval round trips** — the one place where the
content script, the inpage provider, the background worker and the approval
popup all have to work together. A local test page is served by the route
handler on a reserved-TLD origin, gets `window.ethereum` from the shipped
`MAIN`-world content script like any other page, and drives
`eth_requestAccounts`, `personal_sign`, `eth_signTypedData_v4` and
`eth_sendTransaction` through the real prompts. Every signature is recovered in
the runner and compared against the active address, the transaction assertions
run against the raw signed transaction captured at `eth_sendRawTransaction`
rather than against anything the extension reported, rejecting each prompt is
required to return a rejection to the page rather than hang or resolve, and the
password is required to be absent from every message the approval window sends
to the background — with the message that would carry it required to be present,
so that check cannot pass by observing nothing. That last one is the standing
floor under [#157](https://git.eeqj.de/sneak/AutistMask/issues/157).
Three limits of that coverage, none of them papered over. The RPC is stubbed
throughout, so this is **not** a real dApp against a real network with real
funds; that remains a human pass before 1.0.0. The site-connection prompt is
raised through `chrome.action.openPopup()`, and headless Chromium's
browser-action popup is not a page Playwright can see or click, so that one
prompt is driven at the URL the extension itself puts on the action — the same
page and the same approval id, but whether a real toolbar click shows it is not
observable here. And the EIP-1193 error code does not survive the last hop: the
rejection that crosses the boundary carries code 4001 and is asserted to, but
`src/content/inpage.js` rebuilds it as `new Error(message)`, so the calling page
catches an error with no `code` property.
Any test that drives a failure path on purpose declares the `console.error` it
is about to provoke, via `errors.expect()`. That is not a mute: the declaration
consumes exactly one matching record, and a declaration nothing matched fails

25
TODO.md
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@@ -45,6 +45,31 @@ undefined identifiers, which is how
# Completed Steps
- 2026-08-12: `KNOWN_SYMBOLS` now maps a symbol to the set of contract addresses
that bear it, not to one of them. A ticker is not unique: seven of the 512
bundled tokens — `FRAX`, `REUSD`, `TON`, `EURE`, `MSUSD`, `MUSD` and `JPYC`
share a symbol with another bundled entry at a different real contract, and
the table, built from the list first-wins, kept only the earlier one. The
other seven were judged spoofs of their own symbol at their own address and
hidden from the balance list, the history and the send selector, so a holder
could not spend them. Both contracts of each pair come from the same CoinGecko
fetch of 2026-02-27, so neither was stale and neither was dropped.
`isSpoofedSymbol()` asks set membership instead of equality, which does not
loosen the rule — a contract outside the set is still a spoof — and a test now
walks `TOKENS` asserting no bundled token is filtered at its own address,
which is the walk the suite lacked
([#276](https://git.eeqj.de/sneak/AutistMask/issues/276)).
- 2026-08-12: The dApp approval round trips are driven end to end in the
browser. A test page served by the harness speaks EIP-1193 to the real inpage
provider through the real content script, background worker and approval popup
for `eth_requestAccounts`, `personal_sign`, `eth_signTypedData_v4` and
`eth_sendTransaction`. Every signature is recovered and compared against the
active address, the transaction is checked against the bytes handed to the
stubbed RPC, each rejection must reach the page as a rejection, and the
password must appear in no message the approval window sends — the assertion
that gives [#157](https://git.eeqj.de/sneak/AutistMask/issues/157) a permanent
floor. This does not discharge a real dApp with real funds against mainnet
([#183](https://git.eeqj.de/sneak/AutistMask/issues/183)).
- 2026-08-12: The known-symbol spoof rule now judges the symbol a user actually
sees. `isSpoofedSymbol()` normalizes before the lookup — NFKC, then every
character that paints nothing removed (the format and default-ignorable

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@@ -8,12 +8,19 @@
// either verdict alone, because the balance list is where the user forms
// their belief about what they own (issue #235).
//
// KNOWN_SYMBOLS maps a symbol to the lowercased contract address that may
// bear it, or to null. Null means the symbol belongs to the native asset,
// which has no contract at all, so no contract may bear it and every one
// that does is a spoof. "ETH" is the only such entry today; the rule is
// KNOWN_SYMBOLS maps a symbol to the set of lowercased contract addresses
// that may bear it, or to null. Null means the symbol belongs to the native
// asset, which has no contract at all, so no contract may bear it and every
// one that does is a spoof. "ETH" is the only such entry today; the rule is
// written so that a second one needs no change here or at any call site.
//
// The value is a set because a ticker is not unique: seven symbols in the
// bundled list belong to two real contracts each, and answering with one of
// them hid the other one's holders' money (issue #276). Membership, not
// equality, is therefore the question — but it is the same question, asked of
// a table that can now state the truth. Every address in a set is one the
// wallet ships as a real token; a contract outside the set is still a spoof.
//
// The symbol is attacker-controlled — it is whatever the ERC-20 contract
// returns — so the lookup is done on a normalized form (issue #260): the
// question is whether the symbol reaches the user's eye as a known one,
@@ -93,7 +100,7 @@ function isSpoofedSymbol(symbol, contractAddress) {
if (!KNOWN_SYMBOLS.has(sym)) return false;
const legit = KNOWN_SYMBOLS.get(sym);
if (legit === null) return true;
return contract !== normalizeAddress(legit);
return !legit.has(contract);
}
module.exports = {

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@@ -3607,14 +3607,33 @@ for (const t of TOKENS) {
TOKEN_BY_ADDRESS.set(t.address.toLowerCase(), t);
}
// Build a map of symbol (uppercased) -> legitimate contract address (lowercased).
// Used for spoofed-symbol detection. "ETH" maps to null (native token).
// Build a map of symbol (uppercased) -> the set of contract addresses
// (lowercased) that legitimately bear it. Used for spoofed-symbol detection.
// "ETH" maps to null: the native asset has no contract, so no contract may
// bear its symbol.
//
// The value is a set and not a single address because tickers are not unique
// and the list above proves it: seven of these 512 tokens share a symbol with
// another entry — FRAX, REUSD, TON, EURE, MSUSD, MUSD and JPYC — at two
// different real contracts each, all of them from the same source fetch. A
// one-address-per-symbol table can only answer that by picking a winner, and
// the loser is then a token in our own bundled list that the spoof filter
// hides from the balance list, the history and the send selector at its own
// address, so the user cannot spend it (issue #276). Naming every address
// that bears the symbol is the only shape that says what is true; it does not
// loosen the rule, because a contract outside the set is still a spoof.
const KNOWN_SYMBOLS = new Map();
KNOWN_SYMBOLS.set("ETH", null);
for (const t of TOKENS) {
const upper = t.symbol.toUpperCase();
if (!KNOWN_SYMBOLS.has(upper)) {
KNOWN_SYMBOLS.set(upper, t.address.toLowerCase());
KNOWN_SYMBOLS.set(upper, new Set());
}
const addresses = KNOWN_SYMBOLS.get(upper);
// A null entry is the native asset and stays null: an ERC-20 that reports
// the native symbol does not thereby become entitled to it.
if (addresses !== null) {
addresses.add(t.address.toLowerCase());
}
}

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@@ -23,6 +23,8 @@
"use strict";
const { Transaction } = require("ethers");
// Fictional ERC-20 used to seed the transaction-detail test. The symbol
// must not collide with any entry in src/shared/tokenList.js, or
// isSpoofedSymbol() in src/shared/transactions.js drops the transfer as a
@@ -62,6 +64,84 @@ function word(value) {
return "0x" + BigInt(value).toString(16).padStart(64, "0");
}
// -------------------------------------------------------- dApp fixture
//
// The origin the EIP-1193 test page is served from, and the page itself.
//
// It is a fixture like every other one in this file: the route handler
// fulfils the navigation from the string below, so the page never comes
// from a remote origin and nothing about the dApp round trips leaves the
// container. `.test` is reserved by RFC 6761 and has no owner to reach in
// the first place; the launch arguments map every host to NOTFOUND anyway.
//
// What the page deliberately does NOT do is load a provider. window.ethereum
// is put there by the shipped manifest's MAIN-world content script, exactly
// as it is on any http(s) page a user visits, so what these tests speak to
// is the real inpage provider and not a copy the harness wired up.
const DAPP_ORIGIN = "https://dapp.e2e.test";
const DAPP_URL = DAPP_ORIGIN + "/";
// Requests are parked rather than awaited. An approval prompt only exists
// while its call is in flight, so a test that awaited the promise could
// never drive the popup that has to settle it; start() files the promise
// under a key and settle() collects it once the prompt has been dealt with.
//
// The rejection branch records `code` as it arrives. EIP-1193 says a user
// rejection is a ProviderRpcError carrying code 4001; what the page can
// actually see is recorded here rather than assumed, and asserted in run.js.
//
// The message log is the page's half of the boundary observation: every
// AUTISTMASK_* message that crosses between this page and the content
// script, in both directions, verbatim.
const DAPP_HTML = [
"<!doctype html>",
'<html lang="en">',
"<head>",
'<meta charset="utf-8">',
"<title>AutistMask e2e dApp</title>",
// Inline and empty: without it Chromium asks for /favicon.ico, which
// the unstubbed-request guard would report as escaping traffic.
'<link rel="icon" href="data:,">',
"</head>",
"<body>",
"<h1>AutistMask e2e dApp</h1>",
"<script>",
"window.__dapp = {",
" messages: [],",
" calls: {},",
" start: function (key, method, params) {",
" window.__dapp.calls[key] = window.ethereum",
" .request({ method: method, params: params })",
" .then(",
" function (result) {",
" return { settled: 'resolved', result: result };",
" },",
" function (error) {",
" return {",
" settled: 'rejected',",
" message: String((error && error.message) || error),",
" hasCode: !!error && 'code' in Object(error),",
" code: error ? error.code : undefined,",
" };",
" },",
" );",
" },",
" settle: function (key) {",
" return window.__dapp.calls[key];",
" },",
"};",
"window.addEventListener('message', function (event) {",
" if (event.source !== window) return;",
" var d = event.data;",
" if (!d || typeof d.type !== 'string') return;",
" if (d.type.indexOf('AUTISTMASK') !== 0) return;",
" window.__dapp.messages.push(d);",
"});",
"</script>",
"</body>",
"</html>",
].join("\n");
// ------------------------------------------------------------ fee fixture
//
// The confirmation screen carries two different numbers for the same
@@ -101,6 +181,11 @@ const RPC_RESULTS = {
eth_estimateGas: hex(GAS_LIMIT),
eth_getTransactionCount: "0x0",
eth_maxPriorityFeePerGas: hex(PRIORITY_FEE_WEI),
// "not mined yet", which is what a node answers for a transaction it has
// only just accepted. The wait screen the dApp transaction approval hands
// off to polls this every 10 seconds; leaving it unstubbed would report
// the poll as escaping traffic the moment a test outlived one tick.
eth_getTransactionReceipt: null,
};
// The "latest" block, which ethers' getFeeData() reads baseFeePerGas from
@@ -264,6 +349,31 @@ function rpcReply(req, opts, report) {
if (req.method === "eth_getBlockByNumber") {
return Object.assign(envelope, { result: latestBlock() });
}
// The end of the dApp transaction round trip: the raw signed transaction
// the background hands to the node. It is recorded verbatim so a test can
// recover the signer from the exact bytes that were broadcast, rather than
// from anything the extension reported about them.
//
// The reply must be the transaction's real hash. ethers compares the hash
// the node returns against the one it computes itself and throws on a
// mismatch, so a constant here would fail the broadcast for a reason that
// has nothing to do with what is being tested.
if (req.method === "eth_sendRawTransaction") {
const raw = Array.isArray(req.params) ? req.params[0] : null;
let parsed;
try {
parsed = Transaction.from(raw);
} catch {
report("eth_sendRawTransaction with an undecodable transaction");
return Object.assign(envelope, {
error: { code: -32000, message: "undecodable transaction" },
});
}
if (Array.isArray(opts.broadcastTransactions)) {
opts.broadcastTransactions.push(raw);
}
return Object.assign(envelope, { result: parsed.hash });
}
if (req.method === "eth_estimateGas" && opts.failGasEstimate) {
// A refusal the node itself would produce, not a transport error:
// this is the shape the confirmation screen has to turn into
@@ -375,6 +485,8 @@ function traceEnabled(raw) {
* node-side refusal.
* @param {boolean} [opts.holdGasEstimate] hold every batch containing an
* eth_estimateGas until this is cleared again.
* @param {string[]} [opts.broadcastTransactions] every raw signed
* transaction handed to eth_sendRawTransaction, appended in order.
* @returns {Promise<{waitForServiceWorkerTraffic: (ms: number) =>
* Promise<string|null>}>}
*/
@@ -420,6 +532,18 @@ async function installNetworkStubs(ctx, opts) {
return handleRpc(route, req.postData(), opts, report);
}
// The local EIP-1193 test page. Served from here so the dApp round
// trips run against a real http(s) origin — which is what makes the
// shipped content scripts inject at all — without any remote origin
// being involved.
if (url.origin === DAPP_ORIGIN && p === "/") {
return route.fulfill({
status: 200,
contentType: "text/html; charset=utf-8",
body: DAPP_HTML,
});
}
// Blockscout v2
if (p.includes("/api/v2/")) {
if (/\/addresses\/0x[0-9a-fA-F]{40}\/transactions$/.test(p)) {
@@ -508,6 +632,8 @@ async function installNetworkStubs(ctx, opts) {
module.exports = {
installNetworkStubs,
DAPP_ORIGIN,
DAPP_URL,
FEE_ESTIMATE_WEI,
FEE_RESERVE_WEI,
STUB_COUNTERPARTY,

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@@ -56,7 +56,7 @@ global.chrome = {
};
const { isSpoofedSymbol } = require("../src/shared/symbolSpoof");
const { KNOWN_SYMBOLS } = require("../src/shared/tokenList");
const { TOKENS, KNOWN_SYMBOLS } = require("../src/shared/tokenList");
const { filterTransactions } = require("../src/shared/transactions");
const {
fetchTokenBalances,
@@ -284,11 +284,137 @@ describe("the shared rule: symbols that render as a known symbol", () => {
// asserts the claim it stands for — `[ -~]` would admit an interior
// space and let a whitespace-bearing entry through the guard.
test("no bundled symbol is touched by the normalization", () => {
for (const [symbol, address] of KNOWN_SYMBOLS) {
for (const [symbol, addresses] of KNOWN_SYMBOLS) {
expect(symbol).toBe(symbol.trim());
expect(symbol).toMatch(/^[!-~]+$/);
if (address === null) continue;
expect(isSpoofedSymbol(symbol, address)).toBe(false);
if (addresses === null) continue;
for (const address of addresses) {
expect(isSpoofedSymbol(symbol, address)).toBe(false);
}
}
});
});
// Issue #276: the guard that was missing. The suite walked KNOWN_SYMBOLS,
// which is built from TOKENS, so it could only ever assert that the table
// agrees with itself. Seven symbols appear twice in the bundled list at two
// different real contracts, and the table kept whichever came first, so the
// other seven contracts — tokens in our own shipped list, at their own
// addresses — were judged spoofs and hidden from the balance list, the
// history and the send selector. That is the over-filtering direction: it
// hides a holding the user cannot then spend.
//
// This walk is over TOKENS, the data the wallet actually ships, so it fails
// whenever a bundled token would be filtered at its own address no matter
// which side of the table the mistake is on.
describe("the shipped token list", () => {
test("no bundled token is filtered at its own address", () => {
const filtered = TOKENS.filter((t) =>
isSpoofedSymbol(t.symbol, t.address),
).map((t) => t.symbol + " @ " + t.address);
expect(filtered).toEqual([]);
});
// The third failure mode the issue asks about: a symbol whose table entry
// names an address that is in neither the table nor the list would be a
// contract we vouch for and do not ship. There is none, and the table is
// built from the list, so this asserts the derivation has not acquired a
// hand-written entry.
test("every address the table vouches for is a bundled token", () => {
const bundled = new Set(TOKENS.map((t) => t.address.toLowerCase()));
for (const [symbol, addresses] of KNOWN_SYMBOLS) {
if (addresses === null) continue;
expect(addresses.size).toBeGreaterThan(0);
for (const address of addresses) {
expect(address).toBe(address.toLowerCase());
expect(bundled.has(address)).toBe(true);
// And it is the token that actually reports that symbol.
const token = TOKENS.find(
(t) => t.address.toLowerCase() === address,
);
expect(token.symbol.toUpperCase()).toBe(symbol);
}
}
});
// Both contracts behind a shared ticker must pass, from either side: a
// rule that admits only the one the table happens to visit first is the
// bug, not the fix.
test("both contracts behind a shared ticker are admitted", () => {
const bySymbol = new Map();
for (const t of TOKENS) {
const upper = t.symbol.toUpperCase();
if (!bySymbol.has(upper)) bySymbol.set(upper, []);
bySymbol.get(upper).push(t);
}
const shared = [...bySymbol].filter(([, list]) => list.length > 1);
// The shared tickers are a fact about the shipped data; if a future
// list has none, this test would silently assert nothing.
expect(shared.length).toBeGreaterThan(0);
for (const [, list] of shared) {
for (const t of list) {
expect(isSpoofedSymbol(t.symbol, t.address)).toBe(false);
}
}
});
// The seven from issue #276, named so that the reconciliation is a fact
// in the suite: each is two real contracts from the same source fetch,
// and the table now holds both rather than the one that came first.
test("the seven shared tickers each name both bundled contracts", () => {
const expected = {
TON: [
"0x582d872a1b094fc48f5de31d3b73f2d9be47def1", // Toncoin
"0x2be5e8c109e2197d077d13a82daead6a9b3433c5", // Tokamak Network
],
FRAX: [
"0x853d955acef822db058eb8505911ed77f175b99e", // Legacy Frax Dollar
"0x3432b6a60d23ca0dfca7761b7ab56459d9c964d0", // Frax (prev. FXS)
],
REUSD: [
"0x5086bf358635b81d8c47c66d1c8b9e567db70c72", // Re Protocol reUSD
"0x57ab1e0003f623289cd798b1824be09a793e4bec", // Resupply USD
],
EURE: [
"0x39b8b6385416f4ca36a20319f70d28621895279d", // Monerium EUR emoney
"0x3231cb76718cdef2155fc47b5286d82e6eda273f", // Monerium EUR emoney [OLD]
],
MSUSD: [
"0x4ba01f22827018b4772cd326c7627fb4956a7c00", // Main Street USD
"0xab5eb14c09d416f0ac63661e57edb7aecdb9befa", // Metronome Synth USD
],
MUSD: [
"0xaca92e438df0b2401ff60da7e4337b687a2435da", // MetaMask USD
"0xdd468a1ddc392dcdbef6db6e34e89aa338f9f186", // Mezo USD
],
JPYC: [
"0x431d5dff03120afa4bdf332c61a6e1766ef37bdb", // JPY Coin
"0x2370f9d504c7a6e775bf6e14b3f12846b594cd53", // JPY Coin v1
],
};
for (const [symbol, addresses] of Object.entries(expected)) {
expect([...KNOWN_SYMBOLS.get(symbol)].sort()).toEqual(
[...addresses].sort(),
);
for (const address of addresses) {
expect(isSpoofedSymbol(symbol, address)).toBe(false);
}
}
});
// The other direction, on the same symbols: widening the table to hold
// every bundled address for a ticker must not turn it into a pass for
// any other contract.
test("a shared ticker from a third contract is still a spoof", () => {
const bySymbol = new Map();
for (const t of TOKENS) {
const upper = t.symbol.toUpperCase();
if (!bySymbol.has(upper)) bySymbol.set(upper, []);
bySymbol.get(upper).push(t);
}
for (const [symbol, list] of bySymbol) {
if (list.length < 2) continue;
expect(isSpoofedSymbol(symbol, FAKE_ETH_CONTRACT)).toBe(true);
}
});
});

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@@ -207,8 +207,8 @@ describe("token list assumptions the fixtures rely on", () => {
});
test("USDC and WETH map to their genuine lowercased contracts", () => {
expect(KNOWN_SYMBOLS.get("USDC")).toBe(USDC_CONTRACT);
expect(KNOWN_SYMBOLS.get("WETH")).toBe(WETH_CONTRACT);
expect([...KNOWN_SYMBOLS.get("USDC")]).toEqual([USDC_CONTRACT]);
expect([...KNOWN_SYMBOLS.get("WETH")]).toEqual([WETH_CONTRACT]);
});
test("the spam fixture symbol is not in the known token list", () => {