Files
n_signer/tests/test_mnemonic.c

807 lines
30 KiB
C

/* NSIGNER_HEADERLESS_DECLS_BEGIN */
#include <stddef.h>
#include <stdint.h>
#include <sys/types.h>
#include <cJSON.h>
/* from secure_mem.h */
/*
* Secure memory buffer — mlock'd, zeroized on free.
* Used for mnemonic phrases, private keys, and any sensitive material.
*/
typedef struct {
void *data; /* pointer to locked allocation */
size_t size; /* usable size in bytes */
int locked; /* 1 if mlock succeeded */
} secure_buf_t;
/* Allocate a secure buffer of `size` bytes. Returns 0 on success, -1 on failure. */
int secure_buf_alloc(secure_buf_t *buf, size_t size);
/* Zeroize and free a secure buffer. Always succeeds (idempotent). */
void secure_buf_free(secure_buf_t *buf);
/* Zeroize `len` bytes at `ptr` in a way the compiler cannot optimize away. */
void secure_memzero(void *ptr, size_t len);
/* from mnemonic.h */
/* Maximum mnemonic length: 24 words * 10 chars avg + spaces + null = 256 is safe */
#define MNEMONIC_MAX_LEN 256
/*
* Mnemonic state — holds the loaded mnemonic in secure memory.
* Only one mnemonic is active at a time per process.
*/
typedef struct {
secure_buf_t buf; /* secure storage for the mnemonic string */
int loaded; /* 1 if a mnemonic is currently loaded */
int word_count; /* 12, 15, 18, 21, or 24 */
} mnemonic_state_t;
/* Initialize mnemonic state (must be called before use). */
void mnemonic_init(mnemonic_state_t *state);
/* Load a mnemonic string into secure memory. Validates word count (12/15/18/21/24).
* Returns 0 on success, -1 on invalid input, -2 on memory error. */
int mnemonic_load(mnemonic_state_t *state, const char *phrase);
/* Zeroize and unload the mnemonic. Idempotent. */
void mnemonic_unload(mnemonic_state_t *state);
/* Check if a mnemonic is currently loaded. */
int mnemonic_is_loaded(const mnemonic_state_t *state);
/* Get the mnemonic string (only valid while loaded). Returns NULL if not loaded. */
const char *mnemonic_get_phrase(const mnemonic_state_t *state);
/* Generate a new BIP-39 mnemonic phrase (12/15/18/21/24 words) into out.
* Returns 0 on success, -1 on invalid arguments or generation failure. */
int mnemonic_generate(int word_count, char *out, size_t out_len);
/* from role_table.h */
/* Maximum limits */
#define ROLE_NAME_MAX 64
#define ROLE_PATH_MAX 128
#define ROLE_PURPOSE_MAX 32
#define ROLE_CURVE_MAX 16
#define ROLE_PUBKEY_HEX_MAX 66 /* 64 hex chars + null + pad */
#define ROLE_TABLE_MAX_ENTRIES 256
/* Purpose enum for fast comparison (string form kept for config/display) */
typedef enum {
PURPOSE_NOSTR = 0,
PURPOSE_BITCOIN,
PURPOSE_SSH,
PURPOSE_AGE,
PURPOSE_FIPS,
PURPOSE_PQ_SIG, /* post-quantum signatures (ML-DSA, SLH-DSA) */
PURPOSE_PQ_KEM, /* post-quantum key encapsulation (ML-KEM) */
PURPOSE_UNKNOWN
} role_purpose_t;
/* Curve enum */
typedef enum {
CURVE_SECP256K1 = 0,
CURVE_ED25519,
CURVE_X25519,
CURVE_ML_DSA_65,
CURVE_SLH_DSA_128S,
CURVE_ML_KEM_768,
CURVE_UNKNOWN
} role_curve_t;
/* Selector type — how this role's key is addressed */
typedef enum {
SELECTOR_NOSTR_INDEX, /* uses nostr_index shorthand */
SELECTOR_ROLE_PATH /* uses explicit full path */
} role_selector_type_t;
/* A single role entry */
typedef struct {
char name[ROLE_NAME_MAX];
char purpose_str[ROLE_PURPOSE_MAX];
char curve_str[ROLE_CURVE_MAX];
role_purpose_t purpose;
role_curve_t curve;
role_selector_type_t selector_type;
int nostr_index; /* valid if selector_type == SELECTOR_NOSTR_INDEX */
char role_path[ROLE_PATH_MAX]; /* valid if selector_type == SELECTOR_ROLE_PATH */
char pubkey_hex[ROLE_PUBKEY_HEX_MAX]; /* filled after derivation, empty until then */
int derived; /* 1 if pubkey_hex has been populated */
} role_entry_t;
/* The role table */
typedef struct {
role_entry_t entries[ROLE_TABLE_MAX_ENTRIES];
int count;
} role_table_t;
/* Initialize an empty role table */
void role_table_init(role_table_t *table);
/* Add a role entry. Returns 0 on success, -1 if table full, -2 if name duplicate. */
int role_table_add(role_table_t *table, const role_entry_t *entry);
/* Find a role by name. Returns pointer to entry or NULL. */
role_entry_t *role_table_find_by_name(role_table_t *table, const char *name);
/* Find a role by nostr_index. Returns pointer or NULL. */
role_entry_t *role_table_find_by_nostr_index(role_table_t *table, int index);
/* Find a role by role_path. Returns pointer or NULL. */
role_entry_t *role_table_find_by_path(role_table_t *table, const char *path);
/* Get the default role (named "main"). Returns pointer or NULL if no "main" role. */
role_entry_t *role_table_get_default(role_table_t *table);
/* Parse purpose string to enum */
role_purpose_t role_purpose_from_str(const char *s);
/* Parse curve string to enum */
role_curve_t role_curve_from_str(const char *s);
/* Purpose enum to string */
const char *role_purpose_to_str(role_purpose_t p);
/* Curve enum to string */
const char *role_curve_to_str(role_curve_t c);
/* from selector.h */
/* Error codes for selector resolution */
#define SELECTOR_OK 0
#define SELECTOR_ERR_AMBIGUOUS -1 /* multiple selectors specified */
#define SELECTOR_ERR_NOT_FOUND -2 /* no matching role in table */
#define SELECTOR_ERR_NO_DEFAULT -3 /* no selector given and no "main" role exists */
/* Parsed selector from a request's options object */
typedef struct {
int has_role; /* 1 if "role" field was present */
char role_name[ROLE_NAME_MAX];
int has_nostr_index; /* 1 if "nostr_index" field was present */
int nostr_index;
int has_role_path; /* 1 if "role_path" field was present */
char role_path[ROLE_PATH_MAX];
} selector_request_t;
/* Initialize a selector request (all fields zeroed/unset) */
void selector_request_init(selector_request_t *req);
/*
* Resolve a selector request against the role table.
* On success (returns SELECTOR_OK), *out points to the matched role_entry_t.
* On failure, returns one of the SELECTOR_ERR_* codes and *out is NULL.
*/
int selector_resolve(const selector_request_t *req, role_table_t *table, role_entry_t **out);
/*
* Return a human-readable error string for a selector error code.
*/
const char *selector_strerror(int err);
/* from enforcement.h */
/* Error codes */
#define ENFORCE_OK 0
#define ENFORCE_ERR_PURPOSE -1 /* purpose mismatch */
#define ENFORCE_ERR_CURVE -2 /* curve mismatch */
#define ENFORCE_ERR_UNKNOWN_VERB -3 /* verb not recognized */
#define ENFORCE_ERR_ALGORITHM -4 /* algorithm not valid for verb */
/* New algorithm-based verb defines (algorithm is a parameter, not implicit) */
#define VERB_SIGN "sign"
#define VERB_VERIFY "verify"
#define VERB_ENCAPSULATE "encapsulate"
#define VERB_DECAPSULATE "decapsulate"
#define VERB_DERIVE_SHARED "derive_shared_secret"
#define VERB_DERIVE "derive"
#define ENFORCE_ERR_ALGORITHM -4 /* algorithm not valid for verb */
/* New algorithm-based verb defines (algorithm is a parameter, not implicit) */
#define VERB_SIGN "sign"
#define VERB_VERIFY "verify"
#define VERB_ENCAPSULATE "encapsulate"
#define VERB_DECAPSULATE "decapsulate"
#define VERB_DERIVE_SHARED "derive_shared_secret"
#define VERB_DERIVE "derive"
/* Known verbs */
#define VERB_GET_PUBLIC_KEY "get_public_key"
#define VERB_NOSTR_GET_PUBLIC_KEY "nostr_get_public_key"
#define VERB_NOSTR_SIGN_EVENT "nostr_sign_event"
#define VERB_NOSTR_NIP44_ENCRYPT "nostr_nip44_encrypt"
#define VERB_NOSTR_NIP44_DECRYPT "nostr_nip44_decrypt"
#define VERB_NOSTR_NIP04_ENCRYPT "nostr_nip04_encrypt"
#define VERB_NOSTR_NIP04_DECRYPT "nostr_nip04_decrypt"
/*
* Check whether `verb` is allowed to execute against `role`.
* Returns ENFORCE_OK if allowed, or an ENFORCE_ERR_* code.
*
* The enforcement rules are:
* - All nostr verbs (nostr_sign_event, nostr_get_public_key, nostr_nip44_*, nostr_nip04_*) require:
* purpose == PURPOSE_NOSTR and curve == CURVE_SECP256K1
* - Unknown verbs return ENFORCE_ERR_UNKNOWN_VERB (fail-closed).
*/
int enforce_verb_role(const char *verb, const role_entry_t *role);
/*
* Return a human-readable error string for an enforcement error code.
*/
const char *enforce_strerror(int err);
/* from policy.h */
#define POLICY_MAX_ENTRIES 32
#define POLICY_MAX_VERBS 16
#define POLICY_MAX_ROLES 16
#define POLICY_MAX_PURPOSES 8
#define POLICY_VERB_MAX_LEN 32
#define POLICY_CALLER_MAX_LEN 160
#define POLICY_MAX_ALGS 16
#define POLICY_MAX_ALGS 16
/* Prompt behavior */
typedef enum {
PROMPT_NEVER = 0,
PROMPT_FIRST_PER_BOOT,
PROMPT_EVERY_REQUEST,
PROMPT_DENY
} prompt_mode_t;
typedef enum {
POLICY_SOURCE_DEFAULT = 0, /* the catch-all entry */
POLICY_SOURCE_PREAPPROVE, /* from --preapprove CLI flag */
POLICY_SOURCE_SESSION_GRANT /* from prompt [a] during session */
} policy_source_t;
/* A single policy entry */
typedef struct {
char caller[POLICY_CALLER_MAX_LEN]; /* e.g. "uid:1000" or "*" for any */
char verbs[POLICY_MAX_VERBS][POLICY_VERB_MAX_LEN];
int verb_count;
char roles[POLICY_MAX_ROLES][ROLE_NAME_MAX];
int role_count;
char purposes[POLICY_MAX_PURPOSES][ROLE_PURPOSE_MAX];
int purpose_count;
/* Algorithm-based (new) */
char algorithms[16][32]; /* algorithm names; POLICY_MAX_ALGS */
int alg_count;
int index_min; /* -1 = any */
int index_max; /* -1 = any */
/* Common */
prompt_mode_t prompt;
policy_source_t source;
} policy_entry_t;
/* Policy table */
typedef struct {
policy_entry_t entries[POLICY_MAX_ENTRIES];
int count;
} policy_table_t;
/* Policy check result */
#define POLICY_ALLOW 0
#define POLICY_DENY -1
#define POLICY_PROMPT -2 /* would need user confirmation */
#define POLICY_NO_MATCH -3 /* no policy entry matched (fail-closed = deny) */
/* Initialize policy table */
void policy_table_init(policy_table_t *table);
/* Initialize default policy: allow same-uid, deny others */
void policy_init_default(policy_table_t *table, uid_t owner_uid);
/* Add a policy entry. Returns 0 on success, -1 if full. */
int policy_table_add(policy_table_t *table, const policy_entry_t *entry);
/*
* Check whether caller_id is allowed to invoke `verb` on `role_name` with given `purpose`.
* Returns POLICY_ALLOW, POLICY_DENY, POLICY_PROMPT, or POLICY_NO_MATCH.
*/
int policy_check(const policy_table_t *table, const char *caller_id,
const char *verb, const char *role_name, const char *purpose,
policy_source_t *out_source);
/* Check whether caller_id is allowed to invoke `verb` with the given
* algorithm and index (algorithm-based policy). Returns POLICY_ALLOW,
* POLICY_DENY, POLICY_PROMPT, or POLICY_NO_MATCH. */
int policy_check_algorithm(const policy_table_t *table, const char *caller_id,
const char *verb, const char *algorithm, int index,
policy_source_t *out_source);
/* Check whether caller_id is allowed to invoke `verb` with the given
* algorithm and index (algorithm-based policy). Returns POLICY_ALLOW,
* POLICY_DENY, POLICY_PROMPT, or POLICY_NO_MATCH. */
int policy_check_algorithm(const policy_table_t *table, const char *caller_id,
const char *verb, const char *algorithm, int index,
policy_source_t *out_source);
/* Parse prompt mode from string */
prompt_mode_t prompt_mode_from_str(const char *s);
/* Prompt mode to string */
const char *prompt_mode_to_str(prompt_mode_t m);
/* from pq_crypto.h */
/* Algorithm identifiers */
typedef enum {
CRYPTO_ALG_SECP256K1 = 0, /* existing, Nostr */
CRYPTO_ALG_ED25519, /* new, SSH signatures */
CRYPTO_ALG_X25519, /* new, key agreement */
CRYPTO_ALG_ML_DSA_65, /* new, PQ signatures */
CRYPTO_ALG_SLH_DSA_128S, /* new, PQ signatures */
CRYPTO_ALG_ML_KEM_768, /* new, PQ KEM */
CRYPTO_ALG_UNKNOWN
} crypto_alg_t;
/* Key sizes for each algorithm (compile-time constants) */
typedef struct {
size_t priv_key_len;
size_t pub_key_len;
size_t sig_len; /* 0 for KEM */
size_t ciphertext_len; /* 0 for signatures */
size_t shared_secret_len; /* 0 for signatures */
} crypto_alg_sizes_t;
/* Get size info for an algorithm. Returns NULL for CRYPTO_ALG_UNKNOWN. */
const crypto_alg_sizes_t *crypto_alg_get_sizes(crypto_alg_t alg);
/* Map role_curve_t + role_purpose_t to crypto_alg_t.
* Returns CRYPTO_ALG_UNKNOWN for unsupported combinations. */
crypto_alg_t crypto_alg_from_role(role_curve_t curve, role_purpose_t purpose);
/* Convert crypto_alg_t to string. Returns NULL for unknown. */
const char *crypto_alg_to_str(crypto_alg_t alg);
/* Parse string to crypto_alg_t. Returns CRYPTO_ALG_UNKNOWN for unrecognized. */
crypto_alg_t crypto_alg_from_str(const char *s);
/* ed25519: derive keypair from a 32-byte seed.
* priv_out and pub_out must be at least 32 bytes each.
* Returns 0 on success, -1 on error. */
int crypto_ed25519_keygen_from_seed(const unsigned char *seed, size_t seed_len,
unsigned char *priv_out, unsigned char *pub_out);
/* ed25519: sign a message. priv is 32-byte private key.
* sig_out must be at least 64 bytes. Returns 0 on success, -1 on error. */
int crypto_ed25519_sign(const unsigned char *priv, size_t priv_len,
const unsigned char *msg, size_t msg_len,
unsigned char *sig_out, size_t *sig_out_len);
/* ed25519: verify a signature. pub is 32-byte public key.
* Returns 0 on valid, 1 on invalid, -1 on error. */
int crypto_ed25519_verify(const unsigned char *pub, size_t pub_len,
const unsigned char *msg, size_t msg_len,
const unsigned char *sig, size_t sig_len);
/* x25519: derive keypair from a 32-byte seed.
* priv_out and pub_out must be at least 32 bytes each.
* Returns 0 on success, -1 on error. */
int crypto_x25519_keygen_from_seed(const unsigned char *seed, size_t seed_len,
unsigned char *priv_out, unsigned char *pub_out);
/* x25519: derive shared secret from our private key and peer's public key.
* shared_out must be at least 32 bytes. Returns 0 on success, -1 on error. */
int crypto_x25519_ecdh(const unsigned char *our_priv, size_t priv_len,
const unsigned char *peer_pub, size_t pub_len,
unsigned char *shared_out, size_t *shared_out_len);
/* Derive a 32-byte seed from a mnemonic using a BIP-44 path (SLIP-0010).
* seed_out must be at least 32 bytes. Returns 0 on success, -1 on error. */
int crypto_derive_seed_from_mnemonic(const char *mnemonic, const char *path,
unsigned char *seed_out, size_t seed_out_len);
/* ML-DSA-65: generate keypair from a 32-byte seed (deterministic).
* priv_out must be at least 4032 bytes, pub_out at least 1952 bytes.
* Returns 0 on success, -1 on error. */
int crypto_ml_dsa_65_keygen_from_seed(const unsigned char *seed, size_t seed_len,
unsigned char *priv_out, unsigned char *pub_out);
/* ML-DSA-65: sign a message. priv is 4032-byte private key.
* sig_out must be at least 3309 bytes. Returns 0 on success, -1 on error. */
int crypto_ml_dsa_65_sign(const unsigned char *priv, size_t priv_len,
const unsigned char *msg, size_t msg_len,
unsigned char *sig_out, size_t *sig_out_len);
/* ML-DSA-65: verify a signature. pub is 1952-byte public key.
* Returns 0 on valid, 1 on invalid, -1 on error. */
int crypto_ml_dsa_65_verify(const unsigned char *pub, size_t pub_len,
const unsigned char *msg, size_t msg_len,
const unsigned char *sig, size_t sig_len);
/* SLH-DSA-128s: generate keypair from a 32-byte seed (deterministic).
* priv_out must be at least 64 bytes, pub_out at least 32 bytes.
* Returns 0 on success, -1 on error. */
int crypto_slh_dsa_128s_keygen_from_seed(const unsigned char *seed, size_t seed_len,
unsigned char *priv_out, unsigned char *pub_out);
/* SLH-DSA-128s: sign a message. priv is 64-byte private key.
* sig_out must be at least 7856 bytes. Returns 0 on success, -1 on error. */
int crypto_slh_dsa_128s_sign(const unsigned char *priv, size_t priv_len,
const unsigned char *msg, size_t msg_len,
unsigned char *sig_out, size_t *sig_out_len);
/* SLH-DSA-128s: verify a signature. pub is 32-byte public key.
* Returns 0 on valid, 1 on invalid, -1 on error. */
int crypto_slh_dsa_128s_verify(const unsigned char *pub, size_t pub_len,
const unsigned char *msg, size_t msg_len,
const unsigned char *sig, size_t sig_len);
/* ML-KEM-768: generate keypair from a 32-byte seed (deterministic).
* priv_out must be at least 2400 bytes, pub_out at least 1184 bytes.
* Returns 0 on success, -1 on error. */
int crypto_ml_kem_768_keygen_from_seed(const unsigned char *seed, size_t seed_len,
unsigned char *priv_out, unsigned char *pub_out);
/* ML-KEM-768: encapsulate. pub is 1184-byte public key.
* ct_out must be at least 1088 bytes, ss_out at least 32 bytes.
* Returns 0 on success, -1 on error. */
int crypto_ml_kem_768_encaps(const unsigned char *pub, size_t pub_len,
unsigned char *ct_out, unsigned char *ss_out);
/* ML-KEM-768: decapsulate. priv is 2400-byte secret key, ct is 1088-byte ciphertext.
* ss_out must be at least 32 bytes. Returns 0 on success, -1 on error. */
int crypto_ml_kem_768_decaps(const unsigned char *priv, size_t priv_len,
const unsigned char *ct, size_t ct_len,
unsigned char *ss_out);
/* Deterministic PRNG for PQ keygen (replaces PQClean randombytes()). */
void pq_drbg_init(const unsigned char *seed, size_t seed_len);
int pq_drbg_randombytes(unsigned char *buf, size_t len);
void pq_drbg_zeroize(void);
/* from crypto.h */
/* Per-role derived key material (stored in secure memory) */
typedef struct {
secure_buf_t private_key; /* mlock'd, variable size per algorithm */
secure_buf_t public_key; /* mlock'd, variable size per algorithm */
char pubkey_hex[8192]; /* hex-encoded public key (PQ pubkeys are large) */
char npub[128]; /* bech32 npub (secp256k1 only, empty for others) */
crypto_alg_t alg; /* which algorithm this key was derived for */
int valid;
} derived_key_t;
/* Key store — holds derived keys for all roles */
typedef struct {
derived_key_t keys[ROLE_TABLE_MAX_ENTRIES];
int count;
} key_store_t;
/* Derive keys for all roles in the table using the loaded mnemonic.
* Populates key_store and sets role->pubkey_hex and role->derived for each role.
* Only derives for roles with purpose=nostr and curve=secp256k1 (for now).
* Returns number of keys derived, or -1 on error. */
int crypto_derive_all(key_store_t *store, role_table_t *table, const mnemonic_state_t *mnemonic);
/* Get the derived private key for a role (by table index). Returns NULL if not derived. */
const unsigned char *crypto_get_private_key(const key_store_t *store, int role_index);
/* Get the derived public key hex for a role. Returns NULL if not derived. */
const char *crypto_get_pubkey_hex(const key_store_t *store, int role_index);
/* Sign a Nostr event. event_json is the unsigned event JSON string.
* Returns a newly-allocated string containing the signed event JSON, or NULL on error.
* Caller must free() the returned string. */
char *crypto_sign_event(const key_store_t *store, int role_index, const char *event_json);
/* Zeroize all derived keys in the store. */
void crypto_wipe(key_store_t *store);
/* from alg_api.h */
/* Check whether a verb is valid for an algorithm (algorithm-based enforcement).
* Returns ENFORCE_OK, ENFORCE_ERR_ALGORITHM, or ENFORCE_ERR_UNKNOWN_VERB.
* Does NOT check purpose — purpose is irrelevant for the new verbs. */
int enforce_verb_algorithm(const char *verb, crypto_alg_t alg);
/* secp256k1 Schnorr (BIP-340) sign arbitrary bytes.
* priv is 32-byte scalar, pub is 32-byte x-only pubkey, sig_out is 64 bytes.
* Hashes the message with SHA-256 before signing (like Nostr event signing).
* Returns 0 on success, -1 on error. */
int crypto_secp256k1_schnorr_sign(const unsigned char *priv, size_t priv_len,
const unsigned char *msg, size_t msg_len,
unsigned char *sig_out, size_t *sig_out_len);
/* secp256k1 Schnorr (BIP-340) verify.
* pub is 32-byte x-only pubkey, sig is 64 bytes.
* Returns 0 on valid, 1 on invalid, -1 on error. */
int crypto_secp256k1_schnorr_verify(const unsigned char *pub, size_t pub_len,
const unsigned char *msg, size_t msg_len,
const unsigned char *sig, size_t sig_len);
/* secp256k1 ECDSA sign arbitrary bytes.
* priv is 32-byte scalar, sig_out must be at least 64 bytes (compact DER r||s).
* Hashes the message with SHA-256 before signing.
* Returns 0 on success, -1 on error. */
int crypto_secp256k1_ecdsa_sign(const unsigned char *priv, size_t priv_len,
const unsigned char *msg, size_t msg_len,
unsigned char *sig_out, size_t *sig_out_len);
/* secp256k1 ECDSA verify.
* pub is 32-byte x-only pubkey (converted internally to compressed form).
* sig is 64-byte compact (r||s). Returns 0 on valid, 1 on invalid, -1 on error. */
int crypto_secp256k1_ecdsa_verify(const unsigned char *pub, size_t pub_len,
const unsigned char *msg, size_t msg_len,
const unsigned char *sig, size_t sig_len);
/* ---- Algorithm key cache ----
* On-demand key derivation by algorithm+index, separate from the role-based
* key_store. Holds up to ALG_KEY_CACHE_MAX derived keys in secure memory.
* When full, the oldest entry is evicted (FIFO). */
#define ALG_KEY_CACHE_MAX 32
typedef struct {
crypto_alg_t alg;
int index;
secure_buf_t private_key;
secure_buf_t public_key;
char pubkey_hex[8192];
char key_id[17];
int valid;
} alg_key_entry_t;
typedef struct {
alg_key_entry_t entries[ALG_KEY_CACHE_MAX];
int count;
} algorithm_key_cache_t;
/* Initialize an empty cache. */
void alg_key_cache_init(algorithm_key_cache_t *cache);
/* Zeroize and free all entries. Idempotent. */
void alg_key_cache_wipe(algorithm_key_cache_t *cache);
/* Look up a cached entry by (alg, index). Returns NULL if not present. */
const alg_key_entry_t *alg_key_cache_get(algorithm_key_cache_t *cache, crypto_alg_t alg, int index);
/* Derive a key on-demand by (alg, index) and store it in the cache.
* Uses the standard derivation path for the algorithm.
* Returns 0 on success, -1 on error. */
int alg_key_cache_derive(algorithm_key_cache_t *cache, const mnemonic_state_t *mnemonic, crypto_alg_t alg, int index);
/* from dispatcher.h */
/* Dispatcher context — holds references to shared state */
typedef struct {
role_table_t *role_table;
mnemonic_state_t *mnemonic;
key_store_t *key_store;
algorithm_key_cache_t *alg_key_cache; /* algorithm-based on-demand keys */
} dispatcher_ctx_t;
/* Initialize dispatcher context */
void dispatcher_init(dispatcher_ctx_t *ctx, role_table_t *table, mnemonic_state_t *mnemonic, key_store_t *key_store, algorithm_key_cache_t *alg_key_cache);
/*
* Process a JSON-RPC request string and produce a JSON-RPC response string.
*
* The caller owns the returned string and must free() it.
* Returns NULL only on catastrophic allocation failure.
*
* Response format on success:
* { "id": "...", "result": "..." }
*
* Response format on error:
* { "id": "...", "error": { "code": <int>, "message": "..." } }
*
* Error codes:
* -32700 Parse error (invalid JSON)
* -32600 Invalid request (missing id/method/params)
* -32601 Method not found (unknown verb after enforcement)
* -32602 Invalid params
* 1001 ambiguous_role_selector
* 1002 role_not_found
* 1003 no_default_role
* 1004 purpose_mismatch
* 1005 curve_mismatch
* 1006 mnemonic_not_loaded
*/
char *dispatcher_handle_request(dispatcher_ctx_t *ctx, const char *json_request);
/* from server.h */
#define SERVER_SOCKET_NAME_MAX 108
#define SERVER_MAX_MSG_SIZE 65536
/* Caller identity */
typedef struct {
uid_t uid;
gid_t gid;
pid_t pid;
char caller_id[POLICY_CALLER_MAX_LEN]; /* "uid:<n>" */
} caller_identity_t;
/* Server context */
typedef struct {
char socket_name[SERVER_SOCKET_NAME_MAX]; /* abstract namespace name (without \0 prefix) */
char last_error[256];
int listen_fd;
int running;
dispatcher_ctx_t *dispatcher;
policy_table_t *policy;
int socket_name_explicit;
} server_ctx_t;
/* Initialize server context. socket_name is the abstract namespace name (e.g. "nsigner").
* socket_name_explicit should be non-zero when provided via --socket-name override. */
void server_init(server_ctx_t *ctx, const char *socket_name, int socket_name_explicit,
dispatcher_ctx_t *dispatcher, policy_table_t *policy);
/* Start listening. Returns 0 on success, -1 on error. */
int server_start(server_ctx_t *ctx);
/* Get human-readable description of last server error. */
const char *server_last_error(const server_ctx_t *ctx);
/* Handle one pending connection (non-blocking). Returns 1 if handled, 0 if nothing pending, -1 on error.
* activity_cb is called with a description string for the TUI activity log. */
typedef void (*server_activity_cb)(const char *message, void *user_data);
int server_handle_one(server_ctx_t *ctx, server_activity_cb cb, void *cb_data);
/* Stop server and close socket */
void server_stop(server_ctx_t *ctx);
/* Extract caller identity from connected fd */
int server_get_caller(int fd, caller_identity_t *out);
/* from socket_name.h */
/*
* Generate random socket name in format: nsigner_<word1>_<word2>
* Returns 0 on success, -1 on error.
*/
int socket_name_random(char *out, size_t out_len);
/* from main.h */
/*
* nsigner main header - version information
*
* Version macros are auto-updated by increment_and_push.sh.
*/
/* Version information (auto-updated by build/version tooling) */
#define NSIGNER_VERSION_MAJOR 0
#define NSIGNER_VERSION_MINOR 0
#define NSIGNER_VERSION_PATCH 2
#define NSIGNER_VERSION "v0.0.2"
/* NSIGNER_HEADERLESS_DECLS_END */
#include <stdio.h>
#include <string.h>
static int g_failures = 0;
/* Print PASS/FAIL and track failures. */
static void check_condition(const char *name, int condition) {
if (condition) {
printf("PASS: %s\n", name);
} else {
printf("FAIL: %s\n", name);
g_failures++;
}
}
/* Build a deterministic 25-word invalid mnemonic in `out`. */
static void build_25_word_phrase(char *out, size_t out_size) {
size_t used = 0;
int i;
if (out == NULL || out_size == 0) {
return;
}
out[0] = '\0';
for (i = 0; i < 25; ++i) {
const char *word = "abandon";
int wrote;
wrote = snprintf(out + used, out_size - used, "%s%s", (i == 0) ? "" : " ", word);
if (wrote < 0 || (size_t)wrote >= out_size - used) {
/* Truncate safely and stop if buffer is insufficient. */
out[out_size - 1] = '\0';
return;
}
used += (size_t)wrote;
}
}
int main(void) {
mnemonic_state_t state;
const char *valid_12 = "abandon abandon abandon abandon abandon abandon abandon abandon abandon abandon abandon about";
const char *invalid_11 = "abandon abandon abandon abandon abandon abandon abandon abandon abandon abandon about";
char invalid_25[MNEMONIC_MAX_LEN];
const char *loaded_phrase;
char generated_12[MNEMONIC_MAX_LEN];
char generated_24[MNEMONIC_MAX_LEN];
int rc;
mnemonic_init(&state);
check_condition("state initially unloaded", mnemonic_is_loaded(&state) == 0);
rc = mnemonic_load(&state, valid_12);
check_condition("load valid 12-word mnemonic returns 0", rc == 0);
check_condition("state loaded after valid load", mnemonic_is_loaded(&state) == 1);
check_condition("word_count == 12", state.word_count == 12);
loaded_phrase = mnemonic_get_phrase(&state);
check_condition("mnemonic_get_phrase non-NULL when loaded", loaded_phrase != NULL);
check_condition("mnemonic_get_phrase matches input", loaded_phrase != NULL && strcmp(loaded_phrase, valid_12) == 0);
mnemonic_unload(&state);
check_condition("state unloaded after mnemonic_unload", mnemonic_is_loaded(&state) == 0);
check_condition("mnemonic_get_phrase NULL after unload", mnemonic_get_phrase(&state) == NULL);
rc = mnemonic_load(&state, invalid_11);
check_condition("reject invalid 11-word mnemonic", rc == -1);
check_condition("state remains unloaded after invalid 11-word load", mnemonic_is_loaded(&state) == 0);
build_25_word_phrase(invalid_25, sizeof(invalid_25));
rc = mnemonic_load(&state, invalid_25);
check_condition("reject invalid 25-word mnemonic", rc == -1);
check_condition("state remains unloaded after invalid 25-word load", mnemonic_is_loaded(&state) == 0);
rc = mnemonic_generate(12, generated_12, sizeof(generated_12));
check_condition("mnemonic_generate(12) returns 0", rc == 0);
check_condition("mnemonic_generate(12) output non-empty", rc == 0 && generated_12[0] != '\0');
check_condition("load generated 12-word mnemonic", rc == 0 && mnemonic_load(&state, generated_12) == 0);
check_condition("generated 12 word_count == 12", mnemonic_is_loaded(&state) && state.word_count == 12);
mnemonic_unload(&state);
rc = mnemonic_generate(24, generated_24, sizeof(generated_24));
check_condition("mnemonic_generate(24) returns 0", rc == 0);
check_condition("mnemonic_generate(24) output non-empty", rc == 0 && generated_24[0] != '\0');
check_condition("load generated 24-word mnemonic", rc == 0 && mnemonic_load(&state, generated_24) == 0);
check_condition("generated 24 word_count == 24", mnemonic_is_loaded(&state) && state.word_count == 24);
mnemonic_unload(&state);
check_condition("two generated mnemonics differ", strcmp(generated_12, generated_24) != 0);
if (g_failures == 0) {
printf("ALL TESTS PASSED\n");
return 0;
}
printf("TESTS FAILED: %d\n", g_failures);
return 1;
}