Files
s390-tools/zkey/pkey.h
Ingo Franzki 1b044b8a40 zkey: Support EP11 AES keys with prepended header to retain EP11 session
The pkey kernel module supports two key blob formats for EP11 AES keys.
The first one (PKEY_TYPE_EP11) contains a 16 bytes header that overlays
the first 32 bytes of the key blob which usually contain the ID of the
EP11 session to which the key is bound. For zkey/dm-crypt that session
ID used to be all zeros. The second blob format (PKEY_TYPE_EP11_AES)
prepends the 16 bytes header to the blob, an thus does not overlay the
blob. This format can be used for key blobs that are session-bound, i.e.
have a non-zero session ID in the first 32 bytes.

Change zkey to generate EP11 keys using the new format (i.e. pkey type
PKEY_TYPE_EP11_AES), but existing key blobs using the old format can
still be used.

Signed-off-by: Ingo Franzki <ifranzki@linux.ibm.com>
Reviewed-by: Joerg Schmidbauer <jschmidb@de.ibm.com>
Signed-off-by: Steffen Eiden <seiden@linux.ibm.com>
2023-08-21 17:09:26 +02:00

364 lines
12 KiB
C

/*
* zkey - Generate, re-encipher, and validate secure keys
*
* This header file defines the interface to the pkey kernel module.
* It defines a set of IOCTL commands with its associated structures.
*
* Copyright IBM Corp. 2017, 2018
*
* s390-tools is free software; you can redistribute it and/or modify
* it under the terms of the MIT license. See LICENSE for details.
*/
#ifndef PKEY_H
#define PKEY_H
#include "lib/zt_common.h"
#include "cca.h"
#include "ep11.h"
/*
* Definitions for the /dev/pkey kernel module interface
*/
struct tokenheader {
u8 type;
u8 res0[3];
u8 version;
u8 res1[3];
} __packed;
#define TOKEN_TYPE_NON_CCA 0x00
#define TOKEN_TYPE_CCA_INTERNAL 0x01
/* CCA-Internal token versions */
#define TOKEN_VERSION_AESDATA 0x04
#define TOKEN_VERSION_AESCIPHER 0x05
/* Non-CCA token versions */
#define TOKEN_VERSION_PROTECTED_KEY 0x01
#define TOKEN_VERSION_CLEAR_KEY 0x02
#define TOKEN_VERSION_EP11_AES 0x03
#define TOKEN_VERSION_EP11_AES_WITH_HEADER 0x06
#define TOKEN_VERSION_EP11_ECC_WITH_HEADER 0x07
struct aesdatakeytoken {
u8 type; /* TOKEN_TYPE_INTERNAL (0x01) for internal key token */
u8 res0[3];
u8 version; /* should be TOKEN_VERSION_AESDATA (0x04) */
u8 res1[1];
u8 flag; /* key flags */
u8 res2[1];
u64 mkvp; /* master key verification pattern */
u8 key[32]; /* key value (encrypted) */
u8 cv[8]; /* control vector */
u16 bitsize; /* key bit size */
u16 keysize; /* key byte size */
u8 tvv[4]; /* token validation value */
} __packed;
struct aescipherkeytoken {
u8 type; /* TOKEN_TYPE_INTERNAL (0x01) for internal key token */
u8 res0;
u16 length; /* length of token */
u8 version; /* should be TOKEN_VERSION_CIPHER (0x05) */
u8 res1[3];
u8 kms; /* key material state, should be 0x03 */
u8 kvptype; /* key verification pattern type */
u8 kvp[16]; /* key verification pattern */
u8 kwm; /* key wrapping method, should be 0x02 */
u8 kwh; /* key wrapping hash algorithm */
u8 pfv; /* payload format version, should be 0x00*/
u8 res2;
u8 adv; /* associated data section version */
u8 res3;
u16 adl; /* associated data length */
u8 kll; /* length of optional key label */
u8 eadl; /* extended associated data length */
u8 uadl; /* user associated data length */
u8 res4;
u16 pl; /* payload bit length */
u8 res5;
u8 at; /* algorithm type, should be 0x02 (AES) */
u16 kt; /* key type, should be 0x001 (CIPHER) */
u8 kufc; /* key usage field count */
u16 kuf1; /* key usage field 1 */
u16 kuf2; /* key usage field 2 */
u8 kmfc; /* key management field count */
u16 kmf1; /* key management field 1 */
u16 kmf2; /* key management field 2 */
u16 kmf3; /* key management field 3 */
u8 varpart[80]; /* variable part */
} __packed;
struct ep11kblob_header {
u8 type; /* always 0x00 */
u8 hver; /* header version, currently needs to be 0x00 */
u16 len; /* total length in bytes (including this header) */
u8 version; /* PKEY_TYPE_EP11_AES or PKEY_TYPE_EP11_ECC */
u8 res0; /* unused */
u16 bitlen; /* clear key bit len, 0 for unknown */
u8 res1[8]; /* unused */
} __packed;
struct ep11keytoken {
union {
u8 session[32];
struct ep11kblob_header head;
};
u8 wkvp[16]; /* wrapping key verification pattern */
u64 attr; /* boolean key attributes */
u64 mode; /* mode bits */
u16 version; /* 0x1234, ep11 blob struct version */
u8 iv[14];
u8 encrypted_key_data[144];
u8 mac[32];
u8 padding[64];
} __packed;
#define ZERO_SESSION \
"\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0\0"
#define AESDATA_KEY_SIZE sizeof(struct aesdatakeytoken)
#define AESCIPHER_KEY_SIZE sizeof(struct aescipherkeytoken)
#define EP11_KEY_SIZE sizeof(struct ep11keytoken)
#define EP11_AES_KEY_SIZE (sizeof(struct ep11kblob_header) + \
sizeof(struct ep11keytoken))
/* MAX/MIN from zt_common.h produces warnings for variable length arrays */
#define _MIN(a, b) ((a) < (b) ? (a) : (b))
#define _MAX(a, b) ((a) > (b) ? (a) : (b))
#define MAX_SECURE_KEY_SIZE _MAX( \
_MAX(EP11_KEY_SIZE, \
EP11_AES_KEY_SIZE), \
_MAX(AESDATA_KEY_SIZE, \
AESCIPHER_KEY_SIZE))
#define MIN_SECURE_KEY_SIZE _MIN( \
_MIN(EP11_KEY_SIZE, \
EP11_AES_KEY_SIZE), \
_MIN(AESDATA_KEY_SIZE, \
AESCIPHER_KEY_SIZE))
struct pkey_seckey {
u8 seckey[AESDATA_KEY_SIZE]; /* the secure key blob */
};
struct pkey_clrkey {
u8 clrkey[32]; /* 16, 24, or 32 byte clear key value */
};
#define PKEY_IOCTL_MAGIC 'p'
#define AUTOSELECT 0xFFFF
#define PKEYDEVICE "/dev/pkey"
#define PKEY_KEYTYPE_AES_128 1
#define PKEY_KEYTYPE_AES_192 2
#define PKEY_KEYTYPE_AES_256 3
struct pkey_genseck {
u16 cardnr; /* in: card to use or FFFF for any */
u16 domain; /* in: domain or FFFF for any */
u32 keytype; /* in: key type to generate */
struct pkey_seckey seckey; /* out: the secure key blob */
};
#define PKEY_GENSECK _IOWR(PKEY_IOCTL_MAGIC, 0x01, struct pkey_genseck)
struct pkey_clr2seck {
u16 cardnr; /* in: card to use or FFFF for any */
u16 domain; /* in: domain or FFFF for any*/
u32 keytype; /* in: key type to generate */
struct pkey_clrkey clrkey; /* in: the clear key value */
struct pkey_seckey seckey; /* out: the secure key blob */
};
#define PKEY_CLR2SECK _IOWR(PKEY_IOCTL_MAGIC, 0x02, struct pkey_clr2seck)
struct pkey_verifykey {
struct pkey_seckey seckey; /* in: the secure key blob */
u16 cardnr; /* out: card number */
u16 domain; /* out: domain number */
u16 keysize; /* out: key size in bits */
u32 attributes; /* out: attribute bits */
};
#define PKEY_VERIFY_ATTR_AES 0x0001 /* key is an AES key */
#define PKEY_VERIFY_ATTR_OLD_MKVP 0x0100 /* key has old MKVP value */
#define PKEY_VERIFYKEY _IOWR(PKEY_IOCTL_MAGIC, 0x07, struct pkey_verifykey)
enum pkey_key_type {
PKEY_TYPE_CCA_DATA = (u32) 1,
PKEY_TYPE_CCA_CIPHER = (u32) 2,
PKEY_TYPE_EP11 = (u32) 3,
PKEY_TYPE_CCA_ECC = (u32) 0x1f,
PKEY_TYPE_EP11_AES = (u32) 6,
PKEY_TYPE_EP11_ECC = (u32) 7,
};
enum pkey_key_size {
PKEY_SIZE_AES_128 = (u32) 128,
PKEY_SIZE_AES_192 = (u32) 192,
PKEY_SIZE_AES_256 = (u32) 256,
PKEY_SIZE_UNKNOWN = (u32) 0xFFFFFFFF,
};
#define PKEY_FLAGS_MATCH_CUR_MKVP 0x00000002
#define PKEY_FLAGS_MATCH_ALT_MKVP 0x00000004
#define PKEY_KEYGEN_XPRT_SYM 0x00008000
#define PKEY_KEYGEN_XPRT_UASY 0x00004000
#define PKEY_KEYGEN_XPRT_AASY 0x00002000
#define PKEY_KEYGEN_XPRT_RAW 0x00001000
#define PKEY_KEYGEN_XPRT_CPAC 0x00000800
#define PKEY_KEYGEN_XPRT_DES 0x00000080
#define PKEY_KEYGEN_XPRT_AES 0x00000040
#define PKEY_KEYGEN_XPRT_RSA 0x00000008
struct pkey_apqn {
u16 card;
u16 domain;
};
struct pkey_genseck2 {
struct pkey_apqn *apqns; /* in: ptr to list of apqn targets */
u32 apqn_entries; /* in: # of apqn target list entries */
enum pkey_key_type type; /* in: key type to generate */
enum pkey_key_size size; /* in: key size to generate */
u32 keygenflags; /* in: key generation flags */
u8 *key; /* in: pointer to key blob buffer */
u32 keylen; /* in: available key blob buffer size */
/* out: actual key blob size */
};
#define PKEY_GENSECK2 _IOWR(PKEY_IOCTL_MAGIC, 0x11, struct pkey_genseck2)
struct pkey_clr2seck2 {
struct pkey_apqn *apqns; /* in: ptr to list of apqn targets */
u32 apqn_entries; /* in: # of apqn target list entries */
enum pkey_key_type type; /* in: key type to generate */
enum pkey_key_size size; /* in: key size to generate */
u32 keygenflags; /* in: key generation flags */
struct pkey_clrkey clrkey; /* in: the clear key value */
u8 *key; /* in: pointer to key blob buffer */
u32 keylen; /* in: available key blob buffer size */
/* out: actual key blob size */
};
#define PKEY_CLR2SECK2 _IOWR(PKEY_IOCTL_MAGIC, 0x12, struct pkey_clr2seck2)
struct pkey_verifykey2 {
u8 *key; /* in: pointer to key blob */
u32 keylen; /* in: key blob size */
u16 cardnr; /* in/out: card number */
u16 domain; /* in/out: domain number */
enum pkey_key_type type; /* out: the key type */
enum pkey_key_size size; /* out: the key size */
u32 flags; /* out: additional key info flags */
};
#define PKEY_VERIFYKEY2 _IOWR(PKEY_IOCTL_MAGIC, 0x17, struct pkey_verifykey2)
struct pkey_apqns4key {
u8 *key; /* in: pointer to key blob */
u32 keylen; /* in: key blob size */
u32 flags; /* in: match controlling flags */
struct pkey_apqn *apqns; /* in/out: ptr to list of apqn targets*/
u32 apqn_entries; /* in: max # of apqn entries in list */
/* out: # apqns stored into the list */
};
#define PKEY_APQNS4K _IOWR(PKEY_IOCTL_MAGIC, 0x1B, struct pkey_apqns4key)
struct pkey_apqns4keytype {
enum pkey_key_type type; /* in: key type */
u8 cur_mkvp[32]; /* in: current mkvp */
u8 alt_mkvp[32]; /* in: alternate mkvp */
u32 flags; /* in: match controlling flags */
struct pkey_apqn *apqns; /* in/out: ptr to list of apqn targets*/
u32 apqn_entries; /* in: max # of apqn entries in list */
/* out: # apqns stored into the list */
};
#define PKEY_APQNS4KT _IOWR(PKEY_IOCTL_MAGIC, 0x1C, struct pkey_apqns4keytype)
#define KEY_TYPE_CCA_AESDATA "CCA-AESDATA"
#define KEY_TYPE_CCA_AESCIPHER "CCA-AESCIPHER"
#define KEY_TYPE_EP11_AES "EP11-AES"
#define DEFAULT_KEYBITS 256
#define PAES_BLOCK_SIZE 16
#define ENC_ZERO_LEN (2 * PAES_BLOCK_SIZE)
#define VERIFICATION_PATTERN_LEN (2 * ENC_ZERO_LEN + 1)
#define MKVP_LENGTH 16
static const u8 zero_mkvp[MKVP_LENGTH] = { 0x00 };
#define MKVP_EQ(mkvp1, mkvp2) (memcmp(mkvp1, mkvp2, MKVP_LENGTH) == 0)
#define MKVP_ZERO(mkvp) (mkvp == NULL || MKVP_EQ(mkvp, zero_mkvp))
enum card_type {
CARD_TYPE_ANY = -1,
CARD_TYPE_CCA = 1,
CARD_TYPE_EP11 = 2,
};
struct ext_lib {
struct cca_lib *cca;
struct ep11_lib *ep11;
};
int open_pkey_device(bool verbose);
int generate_secure_key_random(int pkey_fd, const char *keyfile,
size_t keybits, bool xts, const char *key_type,
const char **apqns, bool verbose);
int generate_secure_key_clear(int pkey_fd, const char *keyfile,
size_t keybits, bool xts,
const char *clearkeyfile, const char *key_type,
const char **apqns, bool verbose);
u8 *read_secure_key(const char *keyfile, size_t *secure_key_size,
bool verbose);
int write_secure_key(const char *keyfile, const u8 *secure_key,
size_t secure_key_size, bool verbose);
int validate_secure_key(int pkey_fd,
u8 *secure_key, size_t secure_key_size,
size_t *clear_key_bitsize, int *is_old_mk,
const char **apqns, bool verbose);
int generate_key_verification_pattern(const u8 *key, size_t key_size,
char *vp, size_t vp_len, bool verbose);
int get_master_key_verification_pattern(const u8 *key, size_t key_size,
u8 *mkvp, bool verbose);
bool is_cca_aes_data_key(const u8 *key, size_t key_size);
bool is_cca_aes_cipher_key(const u8 *key, size_t key_size);
bool is_ep11_aes_key(const u8 *key, size_t key_size);
bool is_ep11_aes_key_with_header(const u8 *key, size_t key_size);
bool is_ep11_key_session_bound(const u8 *key, size_t key_size);
bool is_xts_key(const u8 *key, size_t key_size);
int get_key_bit_size(const u8 *key, size_t key_size, size_t *bitsize);
const char *get_key_type(const u8 *key, size_t key_size);
int get_min_card_level_for_keytype(const char *key_type);
const struct fw_version *get_min_fw_version_for_keytype(const char *key_type);
enum card_type get_card_type_for_keytype(const char *key_type);
int check_aes_cipher_key(const u8 *key, size_t key_size);
enum reencipher_method {
REENCIPHER_OLD_TO_CURRENT = 1,
REENCIPHER_CURRENT_TO_NEW = 2,
};
int reencipher_secure_key(struct ext_lib *lib, u8 *secure_key,
size_t secure_key_size, const char *apqns,
enum reencipher_method method, bool *apqn_selected,
bool verbose);
#endif