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Sharp Edges Analysis

Free

Identify security pitfalls in APIs and configurations.

by trailofbits6.5k stars on trailofbits/skills
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Updated Aug 10, 2026
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What Sharp Edges Analysis does

Sharp Edges Analysis is a specialized skill designed to evaluate the security posture of APIs, configurations, and interfaces by identifying potential misuse and design flaws. It focuses on ensuring that the path to secure usage is the easiest for developers, adhering to the principle of 'secure by default.' This skill is particularly useful for developers and security professionals who need to audit their code and design decisions to prevent common security mistakes that can stem from poor API usability or dangerous configuration options.

The skill operates through an autonomous agent called sharp-edges-analyzer, which follows a structured four-phase workflow: Surface Identification, Edge Case Probing, Threat Modeling, and Validate Findings. This systematic approach allows for thorough analysis and helps uncover hidden vulnerabilities that may not be immediately apparent. The agent can access language-specific references, making it adaptable to various programming environments and frameworks, which enhances its effectiveness during the review process.

When using Sharp Edges Analysis, users can expect to gain insights into common pitfalls such as algorithm selection footguns, dangerous default values, and silent failures in their code. It serves as a proactive measure to ensure that security considerations are integrated into the design phase rather than being an afterthought. By identifying these issues early, developers can create more robust and secure applications that minimize the risk of exploitation.

This skill is ideal for teams involved in API design, configuration management, or cryptographic implementations. It provides a framework for evaluating whether their designs are resistant to developer misuse and whether they adhere to security best practices, ultimately leading to safer software development.

When to use it

Use this skill when reviewing API designs, auditing configuration schemas, or assessing cryptographic library ergonomics.

When not to use it

This skill is not suitable for addressing implementation bugs, business logic flaws, or performance optimization issues.

What you can build with it

API Design Review

Use Sharp Edges Analysis to evaluate your API design choices and identify potential security pitfalls before deployment.

Configuration Schema Audit

Audit your configuration schemas for dangerous options that could lead to security vulnerabilities in production.

Cryptographic Library Assessment

Assess the ergonomics of cryptographic APIs to ensure they promote secure usage and minimize developer errors.

How to install Sharp Edges Analysis

View source

1. Install with the skills CLI

npx skills add trailofbits/skills/sharp-edges --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by trailofbits

Sharp Edges Analysis

Evaluates whether APIs, configurations, and interfaces are resistant to developer misuse. Identifies designs where the "easy path" leads to insecurity.

When to Use

  • Reviewing API or library design decisions
  • Auditing configuration schemas for dangerous options
  • Evaluating cryptographic API ergonomics
  • Assessing authentication/authorization interfaces
  • Reviewing any code that exposes security-relevant choices to developers

When NOT to Use

  • Implementation bugs (use standard code review)
  • Business logic flaws (use domain-specific analysis)
  • Performance optimization (different concern)

Agent

The sharp-edges-analyzer agent runs the full sharp edges analysis workflow autonomously. Use it when you want a dedicated analysis of APIs, configurations, or interfaces for misuse resistance and footgun potential. The agent follows the four-phase workflow (Surface Identification, Edge Case Probing, Threat Modeling, Validate Findings) and reads language-specific references on demand.

Core Principle

The pit of success: Secure usage should be the path of least resistance. If developers must understand cryptography, read documentation carefully, or remember special rules to avoid vulnerabilities, the API has failed.

Rationalizations to Reject

RationalizationWhy It's WrongRequired Action
"It's documented"Developers don't read docs under deadline pressureMake the secure choice the default or only option
"Advanced users need flexibility"Flexibility creates footguns; most "advanced" usage is copy-pasteProvide safe high-level APIs; hide primitives
"It's the developer's responsibility"Blame-shifting; you designed the footgunRemove the footgun or make it impossible to misuse
"Nobody would actually do that"Developers do everything imaginable under pressureAssume maximum developer confusion
"It's just a configuration option"Config is code; wrong configs ship to productionValidate configs; reject dangerous combinations
"We need backwards compatibility"Insecure defaults can't be grandfather-clausedDeprecate loudly; force migration

Sharp Edge Categories

1. Algorithm/Mode Selection Footguns

APIs that let developers choose algorithms invite choosing wrong ones.

The JWT Pattern (canonical example):

  • Header specifies algorithm: attacker can set "alg": "none" to bypass signatures
  • Algorithm confusion: RSA public key used as HMAC secret when switching RS256→HS256
  • Root cause: Letting untrusted input control security-critical decisions

Detection patterns:

  • Function parameters like algorithm, mode, cipher, hash_type
  • Enums/strings selecting cryptographic primitives
  • Configuration options for security mechanisms

Example - PHP password_hash allowing weak algorithms:

// DANGEROUS: allows crc32, md5, sha1
password_hash($password, PASSWORD_DEFAULT); // Good - no choice
hash($algorithm, $password); // BAD: accepts "crc32"

2. Dangerous Defaults

Defaults that are insecure, or zero/empty values that disable security.

The OTP Lifetime Pattern:

# What happens when lifetime=0?
def verify_otp(code, lifetime=300):  # 300 seconds default
    if lifetime == 0:
        return True  # OOPS: 0 means "accept all"?
        # Or does it mean "expired immediately"?

Detection patterns:

  • Timeouts/lifetimes that accept 0 (infinite? immediate expiry?)
  • Empty strings that bypass checks
  • Null values that skip validation
  • Boolean defaults that disable security features
  • Negative values with undefined semantics

Questions to ask:

  • What happens with timeout=0? max_attempts=0? key=""?
  • Is the default the most secure option?
  • Can any default value disable security entirely?

3. Primitive vs. Semantic APIs

APIs that expose raw bytes instead of meaningful types invite type confusion.

The Libsodium vs. Halite Pattern:

// Libsodium (primitives): bytes are bytes
sodium_crypto_box($message, $nonce, $keypair);
// Easy to: swap nonce/keypair, reuse nonces, use wrong key type

// Halite (semantic): types enforce correct usage
Crypto::seal($message, new EncryptionPublicKey($key));
// Wrong key type = type error, not silent failure

Detection patterns:

  • Functions taking bytes, string, []byte for distinct security concepts
  • Parameters that could be swapped without type errors
  • Same type used for keys, nonces, ciphertexts, signatures

The comparison footgun:

// Timing-safe comparison looks identical to unsafe
if hmac == expected { }           // BAD: timing attack
if hmac.Equal(mac, expected) { }  // Good: constant-time
// Same types, different security properties

4. Configuration Cliffs

One wrong setting creates catastrophic failure, with no warning.

Detection patterns:

  • Boolean flags that disable security entirely
  • String configs that aren't validated
  • Combinations of settings that interact dangerously
  • Environment variables that override security settings
  • Constructor parameters with sensible defaults but no validation (callers can override with insecure values)

Examples:

# One typo = disaster
verify_ssl: fasle  # Typo silently accepted as truthy?

# Magic values
session_timeout: -1  # Does this mean "never expire"?

# Dangerous combinations accepted silently
auth_required: true
bypass_auth_for_health_checks: true
health_check_path: "/"  # Oops
// Sensible default doesn't protect against bad callers
public function __construct(
    public string $hashAlgo = 'sha256',  // Good default...
    public int $otpLifetime = 120,       // ...but accepts md5, 0, etc.
) {}

See config-patterns.md for detailed patterns.

5. Silent Failures

Errors that don't surface, or success that masks failure.

Detection patterns:

  • Functions returning booleans instead of throwing on security failures
  • Empty catch blocks around security operations
  • Default values substituted on parse errors
  • Verification functions that "succeed" on malformed input

Examples:

# Silent bypass
def verify_signature(sig, data, key):
    if not key:
        return True  # No key = skip verification?!

# Return value ignored
signature.verify(data, sig)  # Throws on failure
crypto.verify(data, sig)     # Returns False on failure
# Developer forgets to check return value

6. Stringly-Typed Security

Security-critical values as plain strings enable injection and confusion.

Detection patterns:

  • SQL/commands built from string concatenation
  • Permissions as comma-separated strings
  • Roles/scopes as arbitrary strings instead of enums
  • URLs constructed by joining strings

The permission accumulation footgun:

permissions = "read,write"
permissions += ",admin"  # Too easy to escalate

# vs. type-safe
permissions = {Permission.READ, Permission.WRITE}
permissions.add(Permission.ADMIN)  # At least it's explicit

Analysis Workflow

Phase 1: Surface Identification

  1. Map security-relevant APIs: authentication, authorization, cryptography, session management, input validation
  2. Identify developer choice points: Where can developers select algorithms, configure timeouts, choose modes?
  3. Find configuration schemas: Environment variables, config files, constructor parameters

Phase 2: Edge Case Probing

For each choice point, ask:

  • Zero/empty/null: What happens with 0, "", null, []?
  • Negative values: What does -1 mean? Infinite? Error?
  • Type confusion: Can different security concepts be swapped?
  • Default values: Is the default secure? Is it documented?
  • Error paths: What happens on invalid input? Silent acceptance?

Phase 3: Threat Modeling

Consider three adversaries:

  1. The Scoundrel: Actively malicious developer or attacker controlling config

    • Can they disable security via configuration?
    • Can they downgrade algorithms?
    • Can they inject malicious values?
  2. The Lazy Developer: Copy-pastes examples, skips documentation

    • Will the first example they find be secure?
    • Is the path of least resistance secure?
    • Do error messages guide toward secure usage?
  3. The Confused Developer: Misunderstands the API

    • Can they swap parameters without type errors?
    • Can they use the wrong key/algorithm/mode by accident?
    • Are failure modes obvious or silent?

Phase 4: Validate Findings

For each identified sharp edge:

  1. Reproduce the misuse: Write minimal code demonstrating the footgun
  2. Verify exploitability: Does the misuse create a real vulnerability?
  3. Check documentation: Is the danger documented? (Documentation doesn't excuse bad design, but affects severity)
  4. Test mitigations: Can the API be used safely with reasonable effort?

If a finding seems questionable, return to Phase 2 and probe more edge cases.

Severity Classification

SeverityCriteriaExamples
CriticalDefault or obvious usage is insecureverify: false default; empty password allowed
HighEasy misconfiguration breaks securityAlgorithm parameter accepts "none"
MediumUnusual but possible misconfigurationNegative timeout has unexpected meaning
LowRequires deliberate misuseObscure parameter combination

References

By category:

By language (general footguns, not crypto-specific):

LanguageGuide
C/C++references/lang-c.md
Goreferences/lang-go.md
Rustreferences/lang-rust.md
Swiftreferences/lang-swift.md
Javareferences/lang-java.md
Kotlinreferences/lang-kotlin.md
C#references/lang-csharp.md
PHPreferences/lang-php.md
JavaScript/TypeScriptreferences/lang-javascript.md
Pythonreferences/lang-python.md
Rubyreferences/lang-ruby.md

See also references/language-specific.md for a combined quick reference.

Quality Checklist

Before concluding analysis:

  • Probed all zero/empty/null edge cases
  • Verified defaults are secure
  • Checked for algorithm/mode selection footguns
  • Tested type confusion between security concepts
  • Considered all three adversary types
  • Verified error paths don't bypass security
  • Checked configuration validation
  • Constructor params validated (not just defaulted) - see config-patterns.md

Frequently asked questions about Sharp Edges Analysis

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