METHODOLOGY & RESEARCH SYNTHESIS
Sources: Trail of Bits, SlowMist, ConsenSys, Immunefi Web3 Security Library, Cyfrin Audit Course, Lido Audits Library, Nethermind PublicAuditReports.
TRAIL OF BITS
Their Toolset
| Tool | What It Does | When to Use |
|---|---|---|
| Slither | Static analysis for Solidity/Vyper | Always — run first |
| Echidna | Property-based fuzzer (write invariants, it breaks them) | Write 3-5 invariants before reading code |
| Medusa | Next-gen fuzzer, multi-core, parallel corpus | Deeper campaigns after Echidna |
| Manticore | Symbolic execution — confirms if a path is truly reachable | Specific PoC confirmation |
| Halmos | Symbolic unit testing — proves for ALL inputs | Math-heavy functions |
Slither Commands
bash# Install pip3 install slither-analyzer # First pass — protocol overview slither . --print human-summary slither . --print contract-summary # Targeted detectors slither . --detect reentrancy-eth,reentrancy-no-eth,unchecked-lowlevel slither . --detect arbitrary-send-erc20,controlled-delegatecall slither . --detect uninitialized-state,uninitialized-storage slither . --detect suicidal,controlled-array-length # Visualization slither . --print inheritance-graph slither . --print function-summary slither . --print call-graph # Filtered run (skip tests and libs) slither . --exclude-low --filter-paths "test|lib"
Echidna Quick Start
solidity// Write invariants BEFORE fully reading the code contract VaultInvariants { Vault vault; // Protocol should never owe more than it holds function echidna_solvency() public view returns (bool) { return vault.totalAssets() >= vault.totalDebt(); } // Share math must be consistent function echidna_share_math() public view returns (bool) { return vault.balanceOf(address(this)) <= vault.totalSupply(); } // cumulativeRewardPerShare only ever increases function echidna_reward_monotonic() public view returns (bool) { return vault.cumulativeRewardPerShare() >= lastRewardPerShare; } }
bashechidna contracts/VaultInvariants.sol --contract VaultInvariants --test-mode assertion # With config echidna Test.sol --contract EchidnaTest --config echidna.yaml
yaml# echidna.yaml testLimit: 50000 seqLen: 100 workers: 4 corpusDir: corpus/
Medusa Setup
bash# Install # github.com/crytic/medusa go install github.com/crytic/medusa@latest # Run (coverage-guided, multi-core) medusa fuzz --config medusa.json # medusa.json { "fuzzing": { "workers": 4, "testLimit": 500000, "corpusDirectory": "corpus" } }
Medusa vs Echidna: Medusa is faster on large contracts due to coverage-guided exploration. Use Echidna for first pass, Medusa for extended campaigns.
Trail of Bits Audit Methodology
1. THREAT MODEL FIRST - What are the assets? (tokens, governance power, user funds) - What are the trust boundaries? (who can call what?) - What are the attack surfaces? (entry points, external calls) 2. STATIC ANALYSIS - Run Slither with all detectors - Examine SlithIR output for complex functions - Map ALL state variables and who can write them 3. WRITE INVARIANTS BEFORE READING EVERYTHING - "totalAssets >= totalDebt always" - "shares * pricePerShare == underlying always" - "user can always withdraw their full deposit" - Run Echidna. Watch it break them. 4. SYMBOLIC EXECUTION ON HIGH-VALUE PATHS - Use Manticore/Halmos for precise reachability confirmation - Confirms "can an attacker actually reach state X?" 5. MANUAL REVIEW — FOCUS ON - Business logic (not syntax — Slither caught that) - Economic invariants (is the math right under adversarial conditions?) - Access control (who can call what, when, with what params?) 6. DIFFERENTIAL TESTING - Compare against reference implementation - "Function A does X. Function B does the same thing differently. Why?" - The inconsistency IS the bug.
Key Bug Classes From Real ToB Audits
EVM / Solidity:
REENTRANCY VARIANTS (still common) - Cross-function: lock in depositA, reenter via depositB before state update - Cross-contract: callback to attacker contract via safeTransfer - Read-only: view function reads stale state during reentrant call (Curve $70M — most underestimated variant) ROUNDING ERRORS - Division before multiplication: (a / b) * c vs (a * c) / b - Wrong rounding direction (should round up for safety, rounds down) - Precision loss in sequential operations WEAK FIAT-SHAMIR (ZK SYSTEMS — ToB IEEE S&P 2023) - ZK proof prover can forge proofs if transcript not fully committed - Missing: challenge must bind all public inputs - Check: is the verifier challenge a hash of EVERYTHING the prover touches? ACCESS CONTROL GAPS - Function A has onlyOwner → sibling function B does NOT - Emergency functions callable by non-emergency roles - Initializer called after deployment without restrictions UNSAFE UPGRADES - Storage slot collision between proxy and implementation - Uninitialized implementation contract (selfdestruct vector) - delegatecall to address from storage (attacker controls target) SIGNATURE REPLAY - Missing nonce in signed message - Missing chainId in signed message - Missing contract address in signed message
DeFi-Specific (from Uniswap, Frax, Reserve Protocol, Scroll audits):
LIQUIDITY MATH EDGE CASES - Integer overflow at extreme tick values (Uniswap V3 type) - Rounding direction matters at boundary ORACLE MANIPULATION - TWAP too short → manipulable in same block - Spot price used directly → 1-tx manipulation L2 BRIDGE TRUST - Message replay across chain reorgs - Missing sequence number validation - Finality assumptions wrong for specific L2
The "Risk Accepted" Hunt
ToB's most valuable contribution to bug bounty hunting:
1. Find the audit report PDF for your target protocol (GitHub, protocol docs, "audits" page) 2. Search for "Risk Accepted" or "Acknowledged" 3. For each acknowledged finding: - Is the root cause still in the code? → grep to verify - Has any code been added AROUND the bug that creates new attack paths? - Is there a NEW function that has the same missing check? 4. This is valid because: - Protocol explicitly said "we won't fix this" - BUT: if new code makes it exploitable → that is a NEW bug
ToB Grep Arsenal
bash# Weak Fiat-Shamir candidates (ZK verifiers) grep -rn "keccak256\|hash\|challenge" contracts/ | grep -v "nonce\|chainId\|address(this)" # Reentrancy: transfers before state updates grep -rn "transfer\|safeTransfer\|call{value" contracts/ -B5 | grep -v "nonReentrant" # Rounding direction grep -rn "/ totalSupply\|/ totalAssets\|/ reserves\|/ shares" contracts/ # Then check: is result used for deposit (round down = safe) or withdraw (round up = safe)? # Uninitialized proxy grep -rn "initialize\|_disableInitializers\|initializer" contracts/ # Is implementation contract protected from direct initialization? # Missing chainId in signatures grep -rn "abi.encodePacked\|abi.encode" contracts/ | grep -v "chainId\|block.chainid"
ToB Key Papers
| Paper | Why It Matters |
|---|---|
| Weak Fiat-Shamir Attacks | Breaks ZK proofs — critical if target uses ZK |
| What are the Actual Flaws in Important Smart Contracts? | Ground truth on real Solidity bugs |
| Echidna: Effective, Usable, and Fast Fuzzing | Master fuzzing methodology |
Free Guides:
Testing Handbook: https://appsec.guide/ ZKDocs (ZK vulnerabilities): https://www.zkdocs.com/ Secure Smart Contracts: https://secure-contracts.com/
SLOWMIST LEARNING ROADMAP
The 4-Phase Path
Phase 1: Foundation (1-3 months) → Solidity + EVM + Ethernaut Phase 2: DeFi Protocols & Real Hacks (2-4 months) → AMMs, lending, bridges + reproduce hacks Phase 3: EVM Internals + Advanced (3-6 months) → Storage, proxies, fuzzing, first contest Phase 4: Multi-Chain + Specialization (ongoing) → Pick your chain + live Immunefi bounties
Phase 1: Foundation
Blockchain Basics:
- Ethereum accounts, transactions, blocks, gas
- Mempool: pending transactions, frontrunning mechanics
- Storage: world state, Merkle-Patricia trees, slot layout
Solidity (Essential Level):
- Data types, memory vs storage vs calldata vs stack
- Function visibility: public, external, internal, private
- Low-level:
call,delegatecall,staticcall,create,create2 - Assembly (Yul): inline assembly, memory layout
Key Resources:
1. Solidity docs: docs.soliditylang.org (read ALL of it) 2. Cyfrin Updraft: free courses, beginner to advanced 3. "Mastering Ethereum" — Antonopoulos (Chapters 1–7) 4. Solidity by Example: solidity-by-example.org
Practice:
1. Ethernaut: ethernaut.openzeppelin.com — 30 challenges (complete ALL before Phase 2) 2. Capture The Ether: capturetheether.com — foundational math/crypto bugs 3. Damn Vulnerable DeFi: damnvulnerabledefi.xyz — do after Phase 2
Phase 1 checkpoint:
- Can write a Solidity contract without referencing docs
- Understand storage slot layout (slots, packing, mappings)
- Completed all Ethernaut challenges
- Can explain reentrancy, integer overflow, access control bugs verbally
Phase 2: DeFi Protocols & Real Hacks
Protocols to Understand Deeply (Tier 1 — composes with everything):
1. Uniswap V2/V3 — AMM formula x*y=k, flash swaps, TWAP oracle 2. Aave V3 — aTokens, flash loans, health factor + liquidation 3. Compound V2/V3 — cTokens, borrow/supply rates 4. ERC4626 — shares vs assets, first depositor attack, rounding direction
How to Study Real Hacks:
1. Read the post-mortem (rekt.news, medium, blog) 2. Find the transaction on Etherscan 3. Trace on Phalcon/Tenderly 4. Find the PoC: git clone https://github.com/SunWeb3Sec/DeFiHackLabs 5. Run it: forge test -vvv --contracts src/test/YEAR-MONTH/HackName_exp.sol 6. Add comments explaining every line
Hacks to Study (priority order):
1. Cream Finance (Oct 2021) — $130M — flash loan + price manipulation 2. Euler Finance (Mar 2023) — $197M — donation attack + liquidation 3. Mango Markets (Oct 2022) — $117M — self-oracle manipulation 4. Nomad Bridge (Aug 2022) — $200M — zero-value as trusted root 5. Beanstalk (Apr 2022) — $182M — flash loan governance 6. Curve Finance (Jul 2023) — $70M — Vyper compiler reentrancy 7. Wormhole (Feb 2022) — $320M — fake sysvar on Solana 8. Balancer (Aug 2023) — $2M — read-only reentrancy 9. Poly Network (Aug 2021) — $610M — arbitrary external call 10. Compound Governance (Sep 2022) — $150M — proposal bug
Audit Reports to Read:
Solodit (solodit.cyfrin.io) — 50K+ findings, searchable Code4rena (code4rena.com/reports) — 700+ public reports Sherlock (sherlock.xyz) — all public after contest github.com/trailofbits/publications github.com/spearbit/portfolio github.com/ConsenSys/Diligence-Audit-Reports
Phase 2 checkpoint:
- Can trace a real hack from post-mortem to running PoC
- Understand all 4 Tier-1 DeFi protocols
- Read 10+ audit reports, categorized findings by bug class
- Completed Damn Vulnerable DeFi challenges
Phase 3: EVM Internals + Advanced Techniques
Storage Layout:
Every contract has 2^256 storage slots - Slot 0: first state variable - Mapping key at slot n: keccak256(abi.encode(key, n)) - Dynamic array at slot n: length at n, elements at keccak256(n) + i - String < 32 bytes: packed in one slot
Key Opcodes for Auditors:
DELEGATECALL — executes code in caller's context (storage collision risk) STATICCALL — cannot modify state (no writes, no events) CREATE2 — deterministic address (front-running, same-address malice) SELFDESTRUCT — force-feeds ETH (breaks balance assumptions) TSTORE/TLOAD — transient storage (post-Cancun, cleared each tx)
Proxy Patterns:
Transparent Proxy: admin controls upgrades, user calls go to impl UUPS (EIP-1822): upgrade logic IN the implementation — protect _authorizeUpgrade() Beacon Proxy: all proxies point to Beacon — one upgrade changes ALL
Symbolic Execution:
bashpip install halmos halmos --contract ContractName --function testSymbolic # Proves/disproves invariants for ALL possible inputs (not just sampled)
Phase 3 checkpoint:
- Can calculate any storage slot manually
- Understand all 3 proxy patterns and their attack surfaces
- Can write Echidna fuzzing properties for any protocol
- First Code4rena/Sherlock contest submitted
Phase 4: Specialization
Choose one:
| Track | Chain | Tools | Key Bugs |
|---|---|---|---|
| EVM DeFi | Ethereum, Arbitrum, Base | Slither, Echidna, Foundry | Accounting desync, oracle, reentrancy |
| Solana | Solana | Sec3 X-Ray, Trident, Soteria | Missing signer check, remaining_accounts |
| Cross-Chain Bridges | Any | Tenderly, Phalcon | Message replay, zero-value trusted root |
| ZK Systems | Any | Halmos, ZKDocs | Unsound constraints, missing range checks |
| Move (Sui/Aptos) | Sui, Aptos | Move Prover | Wrong ability annotations, missing capability |
SlowMist's 8-Step Audit Methodology:
1. Information Collection — docs, design, scope (exact commit hash) 2. Risk Item Sorting — list all fund-holding components, rank by TVL 3. Code Review (line by line) — track state changes, external calls, access control 4. Testing and Verification — run existing tests, write PoC for suspects 5. Security Testing (Automated) — Slither, Aderyn, Mythril 6. Discussion and Review — classify severity, remove false positives 7. Report Writing — use standard template, quantify impact in USD 8. Fix Review — re-audit after fixes, check for regressions
SlowMist Security Checklist (Condensed):
Arithmetic: - [ ] Division before multiplication? (should multiply first) - [ ] unchecked {} blocks with user input? - [ ] Type casts (uint256 → uint128 → uint64)? Check each step. Access Control: - [ ] initialize() callable again? After deployment? - [ ] Role assignment in constructor: complete? Missing any role? - [ ] Two-step ownership transfer? Reentrancy: - [ ] All external calls follow CEI? - [ ] nonReentrant on all token-transfer functions? - [ ] Cross-function reentrancy: shared state between two functions? - [ ] Read-only reentrancy: view function read during external call? Business Logic: - [ ] Token accounting: uses balanceBefore/After not amount for fee tokens? - [ ] Rounding direction: who benefits from rounding? (should favor protocol) - [ ] Complete paths: does EVERY exit path update ALL state? - [ ] Sibling functions: do all have the same guards? Oracle / Price: - [ ] Is price from manipulable source (getReserves, slot0)? - [ ] Chainlink: staleness check? Price > 0? Round completeness? - [ ] TWAP window: > 30 minutes for lending/borrowing?
CONSENSYS ATTACK PATTERNS
Source: github.com/ConsenSys/smart-contract-best-practices — the canonical reference for Solidity security.
CEI Pattern (Most Important Rule)
Checks → Effects → Interactions
solidityfunction exampleFunction(uint256 amount) external { // CHECKS: validate all conditions require(amount > 0, "Zero amount"); require(balances[msg.sender] >= amount, "Insufficient balance"); // EFFECTS: update state BEFORE any external interaction balances[msg.sender] -= amount; totalBalance -= amount; // INTERACTIONS: external calls last (bool success,) = msg.sender.call{value: amount}(""); require(success, "Transfer failed"); }
When CEI is not enough: cross-function reentrancy. Function A modifies state partially, calls external, Function B reads the partial state. CEI in A doesn't protect B. Need nonReentrant on both.
Reentrancy
solidity// VULNERABLE: external call before state update function withdrawBalance() public { uint256 amount = userBalances[msg.sender]; (bool success,) = msg.sender.call{value: amount}(""); // INTERACTION first require(success); userBalances[msg.sender] = 0; // EFFECT too late } // SECURE: CEI order function withdrawBalance() public { uint256 amount = userBalances[msg.sender]; userBalances[msg.sender] = 0; // EFFECT first (bool success,) = msg.sender.call{value: amount}(""); // INTERACTION second require(success); }
Grep: .call{value: without nonReentrant and without preceding state update
tx.origin (Always Invalid for Auth)
solidity// VULNERABLE require(tx.origin == owner); // phishable — tx.origin is the EOA, not msg.sender // SECURE require(msg.sender == owner);
Grep: tx\.origin — any use in auth checks is a finding
Force-Feeding ETH (selfdestruct)
solidity// VULNERABLE: relies on address(this).balance for logic require(address(this).balance == 0, "Must be empty"); // can be bypassed // ATTACK: contract ForceFeed { constructor(address target) payable { selfdestruct(payable(target)); // Force ETH in — no receive() needed } } // SECURE: track ETH explicitly uint256 totalTrackedBalance; function deposit() external payable { totalTrackedBalance += msg.value; // never use address(this).balance directly }
Grep: address(this).balance in require/assert or conditional logic
DoS with Block Gas Limit
solidity// VULNERABLE: unbounded loop function distributeRewards() external { for (uint256 i = 0; i < participants.length; i++) { payable(participants[i]).transfer(1 ether); // attacker registers 1000 addresses → OOG } } // SECURE: pull payment pattern mapping(address => uint256) public pendingRewards; function claimReward() external { uint256 amount = pendingRewards[msg.sender]; require(amount > 0); pendingRewards[msg.sender] = 0; payable(msg.sender).transfer(amount); }
Grep: for.*participants\|for.*users\|for.*holders with .transfer or .call inside
Delegatecall to Arbitrary Address
solidity// VULNERABLE: user controls target and data function execute(address target, bytes calldata data) external { (bool success,) = target.delegatecall(data); // delegatecall uses THIS contract's storage → attacker can modify anything } // ATTACK: deploy malicious contract with same slot layout // call: target.execute(maliciousImpl, abi.encodeCall(exploit, ())) // → target.owner() now returns attacker's address
Grep: delegatecall where the address comes from user input (parameter, mapping, external call)
Spot Oracle Price Manipulation
solidity// VULNERABLE: reads current pool price (flash-loan manipulable) function getPrice(address token) external view returns (uint256) { (uint112 reserve0, uint112 reserve1,) = IUniswapV2Pair(pool).getReserves(); return (reserve1 * 1e18) / reserve0; } // SECURE: TWAP (30-minute window) uint32[] memory secondsAgos = new uint32[](2); secondsAgos[0] = 1800; // 30 minutes secondsAgos[1] = 0; (int56[] memory tickCumulatives,) = IUniswapV3Pool(pool).observe(secondsAgos); // → cannot be manipulated in one transaction
Division Precision Loss
solidity// WRONG: loses precision (divides first) uint256 fee = (amount / 100) * feeRate; // CORRECT: multiply before divide uint256 fee = (amount * feeRate) / 100; // ROUNDING DIRECTION: // Collateral required: round UP (protects protocol) uint256 collateral = Math.ceilDiv(loanAmount * collateralFactor, 100); // Shares for deposit: round DOWN (user gets less — safe) // Shares for withdrawal: round UP (user pays more — safe)
Signature Malleability
solidity// VULNERABLE: raw ecrecover — two valid (v,r,s) exist for every signature address signer = ecrecover(hash, v, r, s); // SECURE: OpenZeppelin ECDSA — rejects malleable signatures (s in lower half only) import "@openzeppelin/contracts/utils/cryptography/ECDSA.sol"; address signer = ECDSA.recover(hash, signature);
ConsenSys Grep Arsenal
bash# Reentrancy grep -rn "\.call{value:\|\.send(\|\.transfer(" contracts/ | grep -v "//\|test" # tx.origin auth grep -rn "tx\.origin" contracts/ # Timestamp dependence grep -rn "block\.timestamp.*%" contracts/ # modulo = gameable grep -rn "block\.timestamp.*==" contracts/ # exact equality = fragile # Unchecked blocks grep -rn "unchecked {" contracts/ -A 10 # Force-feed vulnerability grep -rn "address(this)\.balance" contracts/ | grep -v "//\|test" # Push payments (should be pull) grep -rn "\.transfer(\|\.send(" contracts/ | grep "for\|while" # Raw ecrecover grep -rn "ecrecover(" contracts/ | grep -v "ECDSA" # Delegatecall with user input grep -rn "delegatecall(" contracts/ -B5
IMMUNEFI VULNERABILITY LIBRARY
Source: github.com/immunefi-team/Web3-Security-Library — Immunefi's official vulnerability taxonomy.
The 15 Vulnerability Classes
Class 1: Access Control Missing or improperly implemented authorization. Sub-types: missing modifier, incorrect modifier (silent bypass), privilege escalation, unprotected initialization.
bashgrep -rn "function.*public\|function.*external" contracts/ | grep -v "view\|pure" # For each: does it have onlyOwner/onlyRole?
Class 2: Arithmetic Integer overflow/underflow, precision loss, rounding errors, type truncation, ERC4626 first depositor.
bashgrep -rn "unchecked {" contracts/ -A20 grep -rn "uint8(\|uint16(\|uint32(\|uint64(" contracts/ # truncations
Class 3: Oracle Manipulation Spot price from AMM (getReserves, slot0), stale Chainlink (missing staleness check), single oracle, TWAP too short.
bashgrep -rn "getReserves\|slot0\|latestAnswer\|latestRoundData" contracts/ # For latestRoundData: is updatedAt checked? Is price > 0?
Class 4: Logic Errors Wrong operator (> vs >=), missing state update on one path, tautology, missing guard on sibling function.
bashgrep -rn "[<>][^=]" contracts/ | grep "period\|epoch\|amount\|timestamp" # For each: ask "what happens when these are equal?"
Class 5: Reentrancy Classic, cross-function, read-only ($70M Curve), cross-contract, ERC721/ERC777 hooks.
bashgrep -rn "\.call{value:\|safeTransfer\|onERC721Received" contracts/
Class 6: Flash Loans Zero-cost capital: oracle manipulation, flash loan governance voting, ERC4626 share price inflation. Key question: "If an attacker had unlimited capital for 1 transaction, what's the worst they could do?"
bashgrep -rn "getReserves\|slot0" contracts/ # flash-manipulable oracles grep -rn "totalSupply\|balanceOf" contracts/ | grep "vote\|quorum" # flash loan voting
Class 7: Denial of Service Gas limit DoS, reverting push payment, block stuffing, forced revert in catch block, griefing via protocol state.
bashgrep -rn "for.*\.length" contracts/ -A5 | grep "transfer\|send\|call"
Class 8: Cryptography ECDSA malleability, missing chainId (cross-chain replay), missing nonce (same-chain replay), weak RNG, ZK proof always passes, missing circuit range check.
bashgrep -rn "ecrecover(" contracts/ # raw = malleable grep -rn "chainId\|block\.chainid" contracts/ # cross-check with ecrecover grep -rn "block\.timestamp.*random\|blockhash.*random" contracts/
Class 9: Front-Running ERC20 approve race, EIP-2612 permit frontrun DoS, sandwich attacks (missing slippage), harvest frontrun.
bashgrep -rn "minAmountOut\|minOut\|deadline" contracts/ # should be on all swaps grep -rn "permit(" contracts/ | grep -v "try\|catch" # permit without try/catch = frontrunnable
Class 10: Token Standards Fee-on-transfer (amount received ≠ sent), rebasing (balances change without transfers), ERC777 reentrancy, non-reverting ERC20 (USDT).
bashgrep -rn "transferFrom\|transfer(" contracts/ # safeTransfer used? grep -rn "balanceOf(address(this))" contracts/
Key resource: github.com/d-xo/weird-erc20 — catalog of non-standard ERC20 behaviors
Class 11: Upgrade Patterns
Uninitialized implementation, storage slot collision, missing _disableInitializers(), UUPS _authorizeUpgrade() unprotected.
bashgrep -rn "function initialize\|_disableInitializers\|initializer\|reinitializer" contracts/ grep -rn "_authorizeUpgrade" contracts/ # Does it have onlyOwner or equivalent?
Class 12: Bridge Vulnerabilities Signature/message replay (missing nullifier), validator set manipulation, spoofed system accounts (Wormhole $320M), zero value as valid root (Nomad $200M).
bashgrep -rn "verify\|processMessage\|executeTransaction" contracts/ grep -rn "messageHash\|nonce\|nullifier" contracts/
Class 13: Governance Flash loan voting (no snapshot), low quorum manipulation, timelock bypass.
bashgrep -rn "balanceOf\|getCurrentVotes" contracts/ | grep "vote\|proposal" # Should be: getPastVotes(account, block.number - 1) not current balance
Class 14: Randomness
block.timestamp % n, blockhash, keccak256(block.timestamp, msg.sender) — all predictable/manipulable. Use Chainlink VRF or commit-reveal.
bashgrep -rn "block\.timestamp.*%\|blockhash.*random\|keccak256.*block\." contracts/
Class 15: MEV Sandwich attacks, JIT liquidity, back-running. Not a "bug" per se — design protocols to be MEV-resistant (slippage protection, private mempools, Dutch auction liquidations).
Immunefi Bug Fix Reviews (Top 10)
1. Wormhole ($10M) — uninitialized proxy immunefi.com/blog/wormhole-uninitialized-proxy-bugfix-review 2. Aurora ($6M) — delegatecall balance bypass immunefi.com/blog/aurora-infinite-spend-bugfix-review 3. Polygon ($2.2M) — missing balance/signature check immunefi.com/blog/polygon-lack-of-balance-check-bugfix-postmortem 4. Optimism ($2M) — selfdestruct duplication 5. Notional ($1M) — double-counted collateral 6. Balancer ($1M) — ERC4626 rounding + flash swap 7. Beanstalk ($182M) — flash loan governance immunefi.com/blog/beanstalk-insufficient-input-validation-bugfix-review 8. DFX Finance ($100K) — 2-decimal rounding immunefi.com/blog/dfx-finance-rounding-error-bugfix-review 9. Alchemix ($28K) — admin brick forced revert dacian.me/28k-bounty-admin-brick-forced-revert 10. APWine ($100K) — incorrect delegation check
Full PoC repo: github.com/immunefi-team/bugfix-reviews-pocs
→ Each folder: forge test -vvv --match-path test/CONTRACT_NAME*
Tool Matrix (Complete by Phase)
Phase 1 — Setup: Etherscan → get source, ABI, constructor args, admin address DeFiLlama → TVL, protocol type, chain Solodit → search 50K+ findings by type/chain/severity Phase 2 — Static Analysis: Slither → reentrancy, access control, uninitialized vars Aderyn → Foundry projects, generates markdown report Mythril → symbolic execution, integer bugs Semgrep → custom pattern matching Phase 3 — Dynamic Analysis: Foundry → fork testing, PoC execution Echidna → stateful fuzzer, property violations Medusa → coverage-guided, faster on large contracts Halmos → symbolic — proves for ALL inputs Phase 4 — On-Chain Investigation: Phalcon → transaction tracer, full call tree, token flows Tenderly → fork + simulate, replay with modified params Dedaub → decompile unverified contracts Eigenphi → MEV/arbitrage analytics
CTF Resources (Practice Before Live Hunting)
Ethernaut (ethernaut.openzeppelin.com) — 30 challenges, browser-based Damn Vulnerable DeFi (damnvulnerabledefi.xyz) — 17 DeFi-specific challenges Capture The Ether (capturetheether.com) — math and crypto fundamentals Paradigm CTF (github.com/paradigmxyz/paradigm-ctf-2023) — competition-grade Immunefi Community Challenges (github.com/immunefi-team/community-challenges) — 7 challenges Solana: Neodyme Solana Security Workshop (github.com/neodyme-labs/solana-security-workshop) ZK: zkHack (zkhack.dev)
CYFRIN AUDIT COURSE
Source: github.com/Cyfrin/security-and-auditing-full-course-s23 — Patrick Collins + Tincho. 8 sections, 8 real codebases.
The 3-Phase Audit Process
PHASE 1 — INITIAL REVIEW 0. Scoping → exact commit hash, in-scope contracts, chains 1. Reconnaissance → read ALL docs, prior audits, understand system 2. Vulnerability Identification → find bugs 3. Reporting → write findings PHASE 2 — PROTOCOL FIXES 1. Protocol fixes issues 2. Protocol retests PHASE 3 — MITIGATION REVIEW 1. Re-read the fixes 2. Verify each fix addresses root cause 3. Check for new bugs introduced by fix 4. Reporting
Mitigation reviews pay well — fixes often introduce NEW bugs.
Scoping Checklist (Before Reading Code)
□ Commit hash (exact — not just "main") □ Repo URL and in-scope vs out-of-scope contracts □ Solc version □ Chains to deploy to (different chains have different opcodes) □ Token types (ERC20, ERC721, ERC4626, rebasing, fee-on-transfer?) □ Known issues (don't file these) □ Roles (who can call what? Admin power scope?) □ Test coverage: forge test → what's the coverage?
The Tincho Methodology
1. READ THE DOCS FIRST - Don't touch code until you understand the protocol in plain English - What does it do? Who uses it? What are the assets? 2. START SMALL → GO LARGE - Begin with the simplest contracts first - Work up to the most complex 3. NOTE-TAKING IN-CODE - // @audit potential issue here - // @audit-ok verified safe - // @note important to remember 4. USE SOLIDITY METRICS - cloc . → count lines - Solidity Metrics (VSCode) → complexity score, inheritance graph - High complexity = more bugs per line
Cyfrin Finding Format
markdown### [S-#] TITLE (Root Cause + Impact) **Description:** [What the code does wrong. Quote the specific line(s). Be exact.] **Impact:** [What an attacker can do with this. Quantify if possible.] **Proof of Concept:** [Working code or step-by-step. Without this it won't get paid.] **Recommended Mitigation:** [Exact fix. Show the diff if possible.]
Title formula: [ROOT CAUSE] in [function name] allows [WHO] to [IMPACT]
Bug Class Map (8 Codebases)
| Section | Codebase | Bug Classes |
|---|---|---|
| 3 | PasswordStore | Access control, private data on-chain |
| 4 | Puppy Raffle | Reentrancy, weak RNG, arithmetic, DoS |
| 5 | TSwap | Invariant breaking, weird ERC20s |
| 6 | Thunder Loan | Proxy/storage collision, oracle manipulation |
| 7 | Boss Bridge | Signature replay, bridge hacks |
| 7.5 | MEV lesson | Frontrunning, sandwich attacks |
| 8 | Vault Guardians | Governance attack, flash loan voting |
Key Bug Classes with Code
Invariant Breaking (TSwap — AMM):
bash# Write BEFORE reading all code: function invariant_constantProduct() public { assertEq( tokenA.balanceOf(address(pool)) * tokenB.balanceOf(address(pool)), initialK ); }
Storage Collision (Thunder Loan — Proxy):
bashforge inspect ContractName storage-layout # Compare storage layouts of proxy vs implementation # Any variable sharing the same slot = storage collision
Governance Attack (Vault Guardians):
solidity// VULNERABLE: flash loan voting function getVotes(address account) public view returns (uint256) { return token.balanceOf(account); // current balance = flash-loanable } // FIXED: snapshot at proposal creation // ERC20Votes.getPastVotes(account, block.number - 1)
Weak RNG:
solidity// VULNERABLE uint256 winner = uint256(keccak256(abi.encodePacked( msg.sender, block.timestamp, block.difficulty ))) % players.length; // FIXED: Chainlink VRF or commit-reveal
Cyfrin Tools Reference
bash# Static analysis slither . aderyn . # Code metrics (before reading) cloc . # Invariant testing config # foundry.toml: [invariant] runs = 128 depth = 15 fail_on_revert = true # Read any storage slot cast storage 0xAddress SLOT_NUMBER --rpc-url $RPC_URL # Decode calldata cast 4byte-decode CALLDATA # Check if address is contract cast code 0xAddress --rpc-url $RPC_URL
Severity Classification (CodeHawks / Cyfrin)
CRITICAL — Direct loss of funds, no preconditions, any user can trigger HIGH — Loss of funds or protocol core function broken, some preconditions MEDIUM — Loss of value or core function impaired, significant preconditions LOW — Best practice violation, minor loss, or theoretical INFO/GAS — No security impact
The Rekt Test (protocol should answer YES to all):
□ All actors, roles, and privileges documented? □ External services, contracts, and oracles documented? □ Method to freeze/pause in emergency? □ Plan for when you get hacked? □ Off-chain monitoring for suspicious activity? □ Bug bounty program? □ Documented and tested incident response plan?
Cyfrin Key Resources
CodeHawks (competitive audits): https://codehawks.com Solodit (searchable findings DB): https://solodit.xyz DeFiHackLabs: https://github.com/SunWeb3Sec/DeFiHackLabs Weird ERC20 list: https://github.com/d-xo/weird-erc20 Cyfrin audit checklist (Hans'): https://github.com/Cyfrin/audit-checklist Solcurity: https://github.com/transmissions11/solcurity SC Exploits Minimized: https://github.com/Cyfrin/sc-exploits-minimized
LIDO & NETHERMIND (Key Tools and Patterns)
Lido Audits Library (34-lido-audits-library.md)
Source: github.com/lidofinance/audits — 100+ reports, 2020–2026. Protocol TVL: $20B+.
Core strategy: Every "Acknowledged" finding is a live bug in production.
bash# Download audit PDFs and extract acknowledged findings: brew install poppler pdftotext "AuditReport.pdf" - | grep -A 20 "Acknowledged\|Risk Accepted" # Clone current code: git clone https://github.com/lidofinance/lido-dao.git git clone https://github.com/lidofinance/dual-governance.git git clone https://github.com/lidofinance/community-staking-module.git
Highest-signal acknowledged bugs (all present in production):
- Certora V2: 4 High issues acknowledged
- Statemind V2: 1 Critical + 2 High acknowledged
- Oxorio V2 on-chain: 7 Major issues ALL acknowledged
- MixBytes CSM: 23 out of 41 issues acknowledged
Recurring bug patterns across Lido audits:
- Oracle report manipulation — off-chain oracle data accepted without validation on
submitReportData()input params - Withdrawal queue accounting desync —
requestWithdrawal()andfinalize()desynced, allows claiming more than deposited - Staking Router module trust — modules self-report validator counts, malicious module can misreport
- Access control on privileged functions — admin functions callable during unexpected protocol states
- L2 Bridge without finality check — bridge accepts messages without verifying L1 reorg-safe finality
- Dual Governance tiebreaker abuse — tiebreaker activation bypasses veto state
Lido grep arsenal:
bash# Oracle grep -rn "submitReportData\|handleConsensusReport" contracts/ # Withdrawal grep -rn "finalize\|claimWithdrawal\|_finalize" contracts/ # CSM bond grep -rn "getBondSummary\|penalize\|_chargeDepositFee" contracts/ # Dual Governance state machine grep -rn "activateNextState\|_getDualGovernanceState" contracts/ # Functions missing pause check grep -rn "whenNotPaused\|_requireNotPaused" contracts/ | wc -l grep -rn "function.*external\|function.*public" contracts/ | grep -v "view\|pure" | wc -l # If second >> first: functions missing pause protection
Nethermind Audit Patterns (35-nethermind-audit-patterns.md)
Source: github.com/NethermindEth/PublicAuditReports — 166 audits, 428 total issues. Protocols: Vana, Royco, Panoptic V2, Worldcoin (×11), Mellow (×7), ZkLend (×5), Lido ZK Oracle, and 50+ more.
5 Critical Bug Classes (study these first):
-
Empty array bypass of state reset (Vana) — state flag set after a loop that can be skipped by passing
[]bashgrep -rn "= true;" src/ -B10 | grep -B10 "for.*calldata" # Flag: flag = true after loop that could be empty -
Duplicate ID in batch operations (Vana) — same ID passed twice → double credit
bashgrep -rn "function.*migrate\|function.*batch" src/ --include="*.sol" -A20 # Missing: require(!seen[id]) inside loop -
Uninitialized cache variable (Royco) —
cachedTotalAssetsstarts at 0, first depositor gets all sharesbashgrep -rn "cached\|_cache\|Cache" src/ --include="*.sol" # Missing: = realValue in constructor OR if (cache == 0) init guard -
Unauthorized offer updates (Mangrove) —
updateOffer()has norequire(owner[id] == msg.sender)bashgrep -rn "function update\|function modify" src/ --include="*.sol" # If function takes ID but no owner check → critical -
Decimal precision mismatch (Panoptic V2) — 6-decimal token in 18-decimal math rounds collateral to 0
bashgrep -rn "/ 1e18\|/ WAD\|/ 10\*\*18" src/ --include="*.sol" grep -rn "decimals()\|IERC20Metadata" src/ --include="*.sol" # / 1e18 present but decimals() NOT in same function = precision bug candidate
Top recurring patterns (Medium/High, 9–18 instances each):
- Cache sync desync — cache updated on deposit/withdraw but not on interest accrual
- Rounding direction favoring attacker —
mulDivwith wrongRoundingenum - ZK circuit input not range-checked — verifier passes but public input is unconstrained
- Epoch/period consistency gaps — reads
currentEpochbut writes tolastDistributedEpoch - Cross-token decimal hell in multi-asset vaults — sums 6-decimal and 18-decimal balances directly
try/catch { revert }pattern — catch block that reverts permanently bricks user withdrawals- Withdrawal queue invariant violation —
claimed <= claimable <= queuednot maintained
Nethermind 5-minute critical scan:
bash# 1. Empty-array state flag grep -rn "= true;" src/ | grep -v "require\|assert\|if (" # Then check if inside/after loop # 2. Array deduplication missing grep -rn "function.*batch\|function.*multi\|function.*bulk" src/ --include="*.sol" -A20 # 3. Uninitialized cache grep -rn "uint256.*cached\|uint128.*cached" src/ --include="*.sol" -B5 # 4. Decimal mismatch grep -rn "/ 1e18" src/ && grep -rn "6.*decimals\|USDC\|USDT" src/ # 5. Missing ownership check on update functions grep -rn "function update.*Id\|function modify.*Id" src/ --include="*.sol"
Highest-bounty protocols audited by Nethermind:
- Worldcoin (×11 audits) — $50K–$2M Critical
- Lido ZK Oracle — $100K–$2M Critical
- ZkLend (×5) — $50K–$1M Critical
- Panoptic V2 — $50K–$1M Critical
- Eigenlayer — $100K–$2M Critical
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