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path: root/crypto/x509v3/v3_purp.c
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/*
 * Copyright 1999-2016 The OpenSSL Project Authors. All Rights Reserved.
 *
 * Licensed under the OpenSSL license (the "License").  You may not use
 * this file except in compliance with the License.  You can obtain a copy
 * in the file LICENSE in the source distribution or at
 * https://www.openssl.org/source/license.html
 */

#include <stdio.h>
#include "internal/cryptlib.h"
#include "internal/numbers.h"
#include <openssl/x509v3.h>
#include <openssl/x509_vfy.h>
#include "internal/x509_int.h"

static void x509v3_cache_extensions(X509 *x);

static int check_ssl_ca(const X509 *x);
static int check_purpose_ssl_client(const X509_PURPOSE *xp, const X509 *x,
                                    int ca);
static int check_purpose_ssl_server(const X509_PURPOSE *xp, const X509 *x,
                                    int ca);
static int check_purpose_ns_ssl_server(const X509_PURPOSE *xp, const X509 *x,
                                       int ca);
static int purpose_smime(const X509 *x, int ca);
static int check_purpose_smime_sign(const X509_PURPOSE *xp, const X509 *x,
                                    int ca);
static int check_purpose_smime_encrypt(const X509_PURPOSE *xp, const X509 *x,
                                       int ca);
static int check_purpose_crl_sign(const X509_PURPOSE *xp, const X509 *x,
                                  int ca);
static int check_purpose_timestamp_sign(const X509_PURPOSE *xp, const X509 *x,
                                        int ca);
static int no_check(const X509_PURPOSE *xp, const X509 *x, int ca);
static int ocsp_helper(const X509_PURPOSE *xp, const X509 *x, int ca);

static int xp_cmp(const X509_PURPOSE *const *a, const X509_PURPOSE *const *b);
static void xptable_free(X509_PURPOSE *p);

static X509_PURPOSE xstandard[] = {
    {X509_PURPOSE_SSL_CLIENT, X509_TRUST_SSL_CLIENT, 0,
     check_purpose_ssl_client, "SSL client", "sslclient", NULL},
    {X509_PURPOSE_SSL_SERVER, X509_TRUST_SSL_SERVER, 0,
     check_purpose_ssl_server, "SSL server", "sslserver", NULL},
    {X509_PURPOSE_NS_SSL_SERVER, X509_TRUST_SSL_SERVER, 0,
     check_purpose_ns_ssl_server, "Netscape SSL server", "nssslserver", NULL},
    {X509_PURPOSE_SMIME_SIGN, X509_TRUST_EMAIL, 0, check_purpose_smime_sign,
     "S/MIME signing", "smimesign", NULL},
    {X509_PURPOSE_SMIME_ENCRYPT, X509_TRUST_EMAIL, 0,
     check_purpose_smime_encrypt, "S/MIME encryption", "smimeencrypt", NULL},
    {X509_PURPOSE_CRL_SIGN, X509_TRUST_COMPAT, 0, check_purpose_crl_sign,
     "CRL signing", "crlsign", NULL},
    {X509_PURPOSE_ANY, X509_TRUST_DEFAULT, 0, no_check, "Any Purpose", "any",
     NULL},
    {X509_PURPOSE_OCSP_HELPER, X509_TRUST_COMPAT, 0, ocsp_helper,
     "OCSP helper", "ocsphelper", NULL},
    {X509_PURPOSE_TIMESTAMP_SIGN, X509_TRUST_TSA, 0,
     check_purpose_timestamp_sign, "Time Stamp signing", "timestampsign",
     NULL},
};

#define X509_PURPOSE_COUNT OSSL_NELEM(xstandard)

static STACK_OF(X509_PURPOSE) *xptable = NULL;

static int xp_cmp(const X509_PURPOSE *const *a, const X509_PURPOSE *const *b)
{
    return (*a)->purpose - (*b)->purpose;
}

/*
 * As much as I'd like to make X509_check_purpose use a "const" X509* I
 * really can't because it does recalculate hashes and do other non-const
 * things.
 */
int X509_check_purpose(X509 *x, int id, int ca)
{
    int idx;
    const X509_PURPOSE *pt;
    if (!(x->ex_flags & EXFLAG_SET)) {
        CRYPTO_THREAD_write_lock(x->lock);
        x509v3_cache_extensions(x);
        CRYPTO_THREAD_unlock(x->lock);
    }
    /* Return if side-effect only call */
    if (id == -1)
        return 1;
    idx = X509_PURPOSE_get_by_id(id);
    if (idx == -1)
        return -1;
    pt = X509_PURPOSE_get0(idx);
    return pt->check_purpose(pt, x, ca);
}

int X509_PURPOSE_set(int *p, int purpose)
{
    if (X509_PURPOSE_get_by_id(purpose) == -1) {
        X509V3err(X509V3_F_X509_PURPOSE_SET, X509V3_R_INVALID_PURPOSE);
        return 0;
    }
    *p = purpose;
    return 1;
}

int X509_PURPOSE_get_count(void)
{
    if (!xptable)
        return X509_PURPOSE_COUNT;
    return sk_X509_PURPOSE_num(xptable) + X509_PURPOSE_COUNT;
}

X509_PURPOSE *X509_PURPOSE_get0(int idx)
{
    if (idx < 0)
        return NULL;
    if (idx < (int)X509_PURPOSE_COUNT)
        return xstandard + idx;
    return sk_X509_PURPOSE_value(xptable, idx - X509_PURPOSE_COUNT);
}

int X509_PURPOSE_get_by_sname(char *sname)
{
    int i;
    X509_PURPOSE *xptmp;
    for (i = 0; i < X509_PURPOSE_get_count(); i++) {
        xptmp = X509_PURPOSE_get0(i);
        if (strcmp(xptmp->sname, sname) == 0)
            return i;
    }
    return -1;
}

int X509_PURPOSE_get_by_id(int purpose)
{
    X509_PURPOSE tmp;
    int idx;
    if ((purpose >= X509_PURPOSE_MIN) && (purpose <= X509_PURPOSE_MAX))
        return purpose - X509_PURPOSE_MIN;
    tmp.purpose = purpose;
    if (!xptable)
        return -1;
    idx = sk_X509_PURPOSE_find(xptable, &tmp);
    if (idx == -1)
        return -1;
    return idx + X509_PURPOSE_COUNT;
}

int X509_PURPOSE_add(int id, int trust, int flags,
                     int (*ck) (const X509_PURPOSE *, const X509 *, int),
                     char *name, char *sname, void *arg)
{
    int idx;
    X509_PURPOSE *ptmp;
    /*
     * This is set according to what we change: application can't set it
     */
    flags &= ~X509_PURPOSE_DYNAMIC;
    /* This will always be set for application modified trust entries */
    flags |= X509_PURPOSE_DYNAMIC_NAME;
    /* Get existing entry if any */
    idx = X509_PURPOSE_get_by_id(id);
    /* Need a new entry */
    if (idx == -1) {
        if ((ptmp = OPENSSL_malloc(sizeof(*ptmp))) == NULL) {
            X509V3err(X509V3_F_X509_PURPOSE_ADD, ERR_R_MALLOC_FAILURE);
            return 0;
        }
        ptmp->flags = X509_PURPOSE_DYNAMIC;
    } else
        ptmp = X509_PURPOSE_get0(idx);

    /* OPENSSL_free existing name if dynamic */
    if (ptmp->flags & X509_PURPOSE_DYNAMIC_NAME) {
        OPENSSL_free(ptmp->name);
        OPENSSL_free(ptmp->sname);
    }
    /* dup supplied name */
    ptmp->name = OPENSSL_strdup(name);
    ptmp->sname = OPENSSL_strdup(sname);
    if (!ptmp->name || !ptmp->sname) {
        X509V3err(X509V3_F_X509_PURPOSE_ADD, ERR_R_MALLOC_FAILURE);
        return 0;
    }
    /* Keep the dynamic flag of existing entry */
    ptmp->flags &= X509_PURPOSE_DYNAMIC;
    /* Set all other flags */
    ptmp->flags |= flags;

    ptmp->purpose = id;
    ptmp->trust = trust;
    ptmp->check_purpose = ck;
    ptmp->usr_data = arg;

    /* If its a new entry manage the dynamic table */
    if (idx == -1) {
        if (xptable == NULL
            && (xptable = sk_X509_PURPOSE_new(xp_cmp)) == NULL) {
            X509V3err(X509V3_F_X509_PURPOSE_ADD, ERR_R_MALLOC_FAILURE);
            return 0;
        }
        if (!sk_X509_PURPOSE_push(xptable, ptmp)) {
            X509V3err(X509V3_F_X509_PURPOSE_ADD, ERR_R_MALLOC_FAILURE);
            return 0;
        }
    }
    return 1;
}

static void xptable_free(X509_PURPOSE *p)
{
    if (!p)
        return;
    if (p->flags & X509_PURPOSE_DYNAMIC) {
        if (p->flags & X509_PURPOSE_DYNAMIC_NAME) {
            OPENSSL_free(p->name);
            OPENSSL_free(p->sname);
        }
        OPENSSL_free(p);
    }
}

void X509_PURPOSE_cleanup(void)
{
    unsigned int i;
    sk_X509_PURPOSE_pop_free(xptable, xptable_free);
    for (i = 0; i < X509_PURPOSE_COUNT; i++)
        xptable_free(xstandard + i);
    xptable = NULL;
}

int X509_PURPOSE_get_id(X509_PURPOSE *xp)
{
    return xp->purpose;
}

char *X509_PURPOSE_get0_name(X509_PURPOSE *xp)
{
    return xp->name;
}

char *X509_PURPOSE_get0_sname(X509_PURPOSE *xp)
{
    return xp->sname;
}

int X509_PURPOSE_get_trust(X509_PURPOSE *xp)
{
    return xp->trust;
}

static int nid_cmp(const int *a, const int *b)
{
    return *a - *b;
}

DECLARE_OBJ_BSEARCH_CMP_FN(int, int, nid);
IMPLEMENT_OBJ_BSEARCH_CMP_FN(int, int, nid);

int X509_supported_extension(X509_EXTENSION *ex)
{
    /*
     * This table is a list of the NIDs of supported extensions: that is
     * those which are used by the verify process. If an extension is
     * critical and doesn't appear in this list then the verify process will
     * normally reject the certificate. The list must be kept in numerical
     * order because it will be searched using bsearch.
     */

    static const int supported_nids[] = {
        NID_netscape_cert_type, /* 71 */
        NID_key_usage,          /* 83 */
        NID_subject_alt_name,   /* 85 */
        NID_basic_constraints,  /* 87 */
        NID_certificate_policies, /* 89 */
        NID_ext_key_usage,      /* 126 */
#ifndef OPENSSL_NO_RFC3779
        NID_sbgp_ipAddrBlock,   /* 290 */
        NID_sbgp_autonomousSysNum, /* 291 */
#endif
        NID_policy_constraints, /* 401 */
        NID_proxyCertInfo,      /* 663 */
        NID_name_constraints,   /* 666 */
        NID_policy_mappings,    /* 747 */
        NID_inhibit_any_policy  /* 748 */
    };

    int ex_nid = OBJ_obj2nid(X509_EXTENSION_get_object(ex));

    if (ex_nid == NID_undef)
        return 0;

    if (OBJ_bsearch_nid(&ex_nid, supported_nids, OSSL_NELEM(supported_nids)))
        return 1;
    return 0;
}

static void setup_dp(X509 *x, DIST_POINT *dp)
{
    X509_NAME *iname = NULL;
    int i;
    if (dp->reasons) {
        if (dp->reasons->length > 0)
            dp->dp_reasons = dp->reasons->data[0];
        if (dp->reasons->length > 1)
            dp->dp_reasons |= (dp->reasons->data[1] << 8);
        dp->dp_reasons &= CRLDP_ALL_REASONS;
    } else
        dp->dp_reasons = CRLDP_ALL_REASONS;
    if (!dp->distpoint || (dp->distpoint->type != 1))
        return;
    for (i = 0; i < sk_GENERAL_NAME_num(dp->CRLissuer); i++) {
        GENERAL_NAME *gen = sk_GENERAL_NAME_value(dp->CRLissuer, i);
        if (gen->type == GEN_DIRNAME) {
            iname = gen->d.directoryName;
            break;
        }
    }
    if (!iname)
        iname = X509_get_issuer_name(x);

    DIST_POINT_set_dpname(dp->distpoint, iname);

}

static void setup_crldp(X509 *x)
{
    int i;
    x->crldp = X509_get_ext_d2i(x, NID_crl_distribution_points, NULL, NULL);
    for (i = 0; i < sk_DIST_POINT_num(x->crldp); i++)
        setup_dp(x, sk_DIST_POINT_value(x->crldp, i));
}

#define V1_ROOT (EXFLAG_V1|EXFLAG_SS)
#define ku_reject(x, usage) \
        (((x)->ex_flags & EXFLAG_KUSAGE) && !((x)->ex_kusage & (usage)))
#define xku_reject(x, usage) \
        (((x)->ex_flags & EXFLAG_XKUSAGE) && !((x)->ex_xkusage & (usage)))
#define ns_reject(x, usage) \
        (((x)->ex_flags & EXFLAG_NSCERT) && !((x)->ex_nscert & (usage)))

static void x509v3_cache_extensions(X509 *x)
{
    BASIC_CONSTRAINTS *bs;
    PROXY_CERT_INFO_EXTENSION *pci;
    ASN1_BIT_STRING *usage;
    ASN1_BIT_STRING *ns;
    EXTENDED_KEY_USAGE *extusage;
    X509_EXTENSION *ex;

    int i;
    if (x->ex_flags & EXFLAG_SET)
        return;
    X509_digest(x, EVP_sha1(), x->sha1_hash, NULL);
    /* V1 should mean no extensions ... */
    if (!X509_get_version(x))
        x->ex_flags |= EXFLAG_V1;
    /* Handle basic constraints */
    if ((bs = X509_get_ext_d2i(x, NID_basic_constraints, NULL, NULL))) {
        if (bs->ca)
            x->ex_flags |= EXFLAG_CA;
        if (bs->pathlen) {
            if ((bs->pathlen->type == V_ASN1_NEG_INTEGER)
                || !bs->ca) {
                x->ex_flags |= EXFLAG_INVALID;
                x->ex_pathlen = 0;
            } else
                x->ex_pathlen = ASN1_INTEGER_get(bs->pathlen);
        } else
            x->ex_pathlen = -1;
        BASIC_CONSTRAINTS_free(bs);
        x->ex_flags |= EXFLAG_BCONS;
    }
    /* Handle proxy certificates */
    if ((pci = X509_get_ext_d2i(x, NID_proxyCertInfo, NULL, NULL))) {
        if (x->ex_flags & EXFLAG_CA
            || X509_get_ext_by_NID(x, NID_subject_alt_name, -1) >= 0
            || X509_get_ext_by_NID(x, NID_issuer_alt_name, -1) >= 0) {
            x->ex_flags |= EXFLAG_INVALID;
        }
        if (pci->pcPathLengthConstraint) {
            x->ex_pcpathlen = ASN1_INTEGER_get(pci->pcPathLengthConstraint);
        } else
            x->ex_pcpathlen = -1;
        PROXY_CERT_INFO_EXTENSION_free(pci);
        x->ex_flags |= EXFLAG_PROXY;
    }
    /* Handle key usage */
    if ((usage = X509_get_ext_d2i(x, NID_key_usage, NULL, NULL))) {
        if (usage->length > 0) {
            x->ex_kusage = usage->data[0];
            if (usage->length > 1)
                x->ex_kusage |= usage->data[1] << 8;
        } else
            x->ex_kusage = 0;
        x->ex_flags |= EXFLAG_KUSAGE;
        ASN1_BIT_STRING_free(usage);
    }
    x->ex_xkusage = 0;
    if ((extusage = X509_get_ext_d2i(x, NID_ext_key_usage, NULL, NULL))) {
        x->ex_flags |= EXFLAG_XKUSAGE;
        for (i = 0; i < sk_ASN1_OBJECT_num(extusage); i++) {
            switch (OBJ_obj2nid(sk_ASN1_OBJECT_value(extusage, i))) {
            case NID_server_auth:
                x->ex_xkusage |= XKU_SSL_SERVER;
                break;

            case NID_client_auth:
                x->ex_xkusage |= XKU_SSL_CLIENT;
                break;

            case NID_email_protect:
                x->ex_xkusage |= XKU_SMIME;
                break;

            case NID_code_sign:
                x->ex_xkusage |= XKU_CODE_SIGN;
                break;

            case NID_ms_sgc:
            case NID_ns_sgc:
                x->ex_xkusage |= XKU_SGC;
                break;

            case NID_OCSP_sign:
                x->ex_xkusage |= XKU_OCSP_SIGN;
                break;

            case NID_time_stamp:
                x->ex_xkusage |= XKU_TIMESTAMP;
                break;

            case NID_dvcs:
                x->ex_xkusage |= XKU_DVCS;
                break;

            case NID_anyExtendedKeyUsage:
                x->ex_xkusage |= XKU_ANYEKU;
                break;
            }
        }
        sk_ASN1_OBJECT_pop_free(extusage, ASN1_OBJECT_free);
    }

    if ((ns = X509_get_ext_d2i(x, NID_netscape_cert_type, NULL, NULL))) {
        if (ns->length > 0)
            x->ex_nscert = ns->data[0];
        else
            x->ex_nscert = 0;
        x->ex_flags |= EXFLAG_NSCERT;
        ASN1_BIT_STRING_free(ns);
    }
    x->skid = X509_get_ext_d2i(x, NID_subject_key_identifier, NULL, NULL);
    x->akid = X509_get_ext_d2i(x, NID_authority_key_identifier, NULL, NULL);
    /* Does subject name match issuer ? */
    if (!X509_NAME_cmp(X509_get_subject_name(x), X509_get_issuer_name(x))) {
        x->ex_flags |= EXFLAG_SI;
        /* If SKID matches AKID also indicate self signed */
        if (X509_check_akid(x, x->akid) == X509_V_OK &&
            !ku_reject(x, KU_KEY_CERT_SIGN))
            x->ex_flags |= EXFLAG_SS;
    }
    x->altname = X509_get_ext_d2i(x, NID_subject_alt_name, NULL, NULL);
    x->nc = X509_get_ext_d2i(x, NID_name_constraints, &i, NULL);
    if (!x->nc && (i != -1))
        x->ex_flags |= EXFLAG_INVALID;
    setup_crldp(x);

#ifndef OPENSSL_NO_RFC3779
    x->rfc3779_addr = X509_get_ext_d2i(x, NID_sbgp_ipAddrBlock, NULL, NULL);
    x->rfc3779_asid = X509_get_ext_d2i(x, NID_sbgp_autonomousSysNum,
                                       NULL, NULL);
#endif
    for (i = 0; i < X509_get_ext_count(x); i++) {
        ex = X509_get_ext(x, i);
        if (OBJ_obj2nid(X509_EXTENSION_get_object(ex))
            == NID_freshest_crl)
            x->ex_flags |= EXFLAG_FRESHEST;
        if (!X509_EXTENSION_get_critical(ex))
            continue;
        if (!X509_supported_extension(ex)) {
            x->ex_flags |= EXFLAG_CRITICAL;
            break;
        }
    }
    x->ex_flags |= EXFLAG_SET;
}

/*-
 * CA checks common to all purposes
 * return codes:
 * 0 not a CA
 * 1 is a CA
 * 2 basicConstraints absent so "maybe" a CA
 * 3 basicConstraints absent but self signed V1.
 * 4 basicConstraints absent but keyUsage present and keyCertSign asserted.
 */

static int check_ca(const X509 *x)
{
    /* keyUsage if present should allow cert signing */
    if (ku_reject(x, KU_KEY_CERT_SIGN))
        return 0;
    if (x->ex_flags & EXFLAG_BCONS) {
        if (x->ex_flags & EXFLAG_CA)
            return 1;
        /* If basicConstraints says not a CA then say so */
        else
            return 0;
    } else {
        /* we support V1 roots for...  uh, I don't really know why. */
        if ((x->ex_flags & V1_ROOT) == V1_ROOT)
            return 3;
        /*
         * If key usage present it must have certSign so tolerate it
         */
        else if (x->ex_flags & EXFLAG_KUSAGE)
            return 4;
        /* Older certificates could have Netscape-specific CA types */
        else if (x->ex_flags & EXFLAG_NSCERT && x->ex_nscert & NS_ANY_CA)
            return 5;
        /* can this still be regarded a CA certificate?  I doubt it */
        return 0;
    }
}

int X509_check_ca(X509 *x)
{
    if (!(x->ex_flags & EXFLAG_SET)) {
        CRYPTO_THREAD_write_lock(x->lock);
        x509v3_cache_extensions(x);
        CRYPTO_THREAD_unlock(x->lock);
    }

    return check_ca(x);
}

/* Check SSL CA: common checks for SSL client and server */
static int check_ssl_ca(const X509 *x)
{
    int ca_ret;
    ca_ret = check_ca(x);
    if (!ca_ret)
        return 0;
    /* check nsCertType if present */
    if (ca_ret != 5 || x->ex_nscert & NS_SSL_CA)
        return ca_ret;
    else
        return 0;
}

static int check_purpose_ssl_client(const X509_PURPOSE *xp, const X509 *x,
                                    int ca)
{
    if (xku_reject(x, XKU_SSL_CLIENT))
        return 0;
    if (ca)
        return check_ssl_ca(x);
    /* We need to do digital signatures or key agreement */
    if (ku_reject(x, KU_DIGITAL_SIGNATURE | KU_KEY_AGREEMENT))
        return 0;
    /* nsCertType if present should allow SSL client use */
    if (ns_reject(x, NS_SSL_CLIENT))
        return 0;
    return 1;
}

/*
 * Key usage needed for TLS/SSL server: digital signature, encipherment or
 * key agreement. The ssl code can check this more thoroughly for individual
 * key types.
 */
#define KU_TLS \
        KU_DIGITAL_SIGNATURE|KU_KEY_ENCIPHERMENT|KU_KEY_AGREEMENT

static int check_purpose_ssl_server(const X509_PURPOSE *xp, const X509 *x,
                                    int ca)
{
    if (xku_reject(x, XKU_SSL_SERVER | XKU_SGC))
        return 0;
    if (ca)
        return check_ssl_ca(x);

    if (ns_reject(x, NS_SSL_SERVER))
        return 0;
    if (ku_reject(x, KU_TLS))
        return 0;

    return 1;

}

static int check_purpose_ns_ssl_server(const X509_PURPOSE *xp, const X509 *x,
                                       int ca)
{
    int ret;
    ret = check_purpose_ssl_server(xp, x, ca);
    if (!ret || ca)
        return ret;
    /* We need to encipher or Netscape complains */
    if (ku_reject(x, KU_KEY_ENCIPHERMENT))
        return 0;
    return ret;
}

/* common S/MIME checks */
static int purpose_smime(const X509 *x, int ca)
{
    if (xku_reject(x, XKU_SMIME))
        return 0;
    if (ca) {
        int ca_ret;
        ca_ret = check_ca(x);
        if (!ca_ret)
            return 0;
        /* check nsCertType if present */
        if (ca_ret != 5 || x->ex_nscert & NS_SMIME_CA)
            return ca_ret;
        else
            return 0;
    }
    if (x->ex_flags & EXFLAG_NSCERT) {
        if (x->ex_nscert & NS_SMIME)
            return 1;
        /* Workaround for some buggy certificates */
        if (x->ex_nscert & NS_SSL_CLIENT)
            return 2;
        return 0;
    }
    return 1;
}

static int check_purpose_smime_sign(const X509_PURPOSE *xp, const X509 *x,
                                    int ca)
{
    int ret;
    ret = purpose_smime(x, ca);
    if (!ret || ca)
        return ret;
    if (ku_reject(x, KU_DIGITAL_SIGNATURE | KU_NON_REPUDIATION))
        return 0;
    return ret;
}

static int check_purpose_smime_encrypt(const X509_PURPOSE *xp, const X509 *x,
                                       int ca)
{
    int ret;
    ret = purpose_smime(x, ca);
    if (!ret || ca)
        return ret;
    if (ku_reject(x, KU_KEY_ENCIPHERMENT))
        return 0;
    return ret;
}

static int check_purpose_crl_sign(const X509_PURPOSE *xp, const X509 *x,
                                  int ca)
{
    if (ca) {
        int ca_ret;
        if ((ca_ret = check_ca(x)) != 2)
            return ca_ret;
        else
            return 0;
    }
    if (ku_reject(x, KU_CRL_SIGN))
        return 0;
    return 1;
}

/*
 * OCSP helper: this is *not* a full OCSP check. It just checks that each CA
 * is valid. Additional checks must be made on the chain.
 */

static int ocsp_helper(const X509_PURPOSE *xp, const X509 *x, int ca)
{
    /*
     * Must be a valid CA.  Should we really support the "I don't know" value
     * (2)?
     */
    if (ca)
        return check_ca(x);
    /* leaf certificate is checked in OCSP_verify() */
    return 1;
}

static int check_purpose_timestamp_sign(const X509_PURPOSE *xp, const X509 *x,
                                        int ca)
{
    int i_ext;

    /* If ca is true we must return if this is a valid CA certificate. */
    if (ca)
        return check_ca(x);

    /*
     * Check the optional key usage field:
     * if Key Usage is present, it must be one of digitalSignature
     * and/or nonRepudiation (other values are not consistent and shall
     * be rejected).
     */
    if ((x->ex_flags & EXFLAG_KUSAGE)
        && ((x->ex_kusage & ~(KU_NON_REPUDIATION | KU_DIGITAL_SIGNATURE)) ||
            !(x->ex_kusage & (KU_NON_REPUDIATION | KU_DIGITAL_SIGNATURE))))
        return 0;

    /* Only time stamp key usage is permitted and it's required. */
    if (!(x->ex_flags & EXFLAG_XKUSAGE) || x->ex_xkusage != XKU_TIMESTAMP)
        return 0;

    /* Extended Key Usage MUST be critical */
    i_ext = X509_get_ext_by_NID((X509 *)x, NID_ext_key_usage, -1);
    if (i_ext >= 0) {
        X509_EXTENSION *ext = X509_get_ext((X509 *)x, i_ext);
        if (!X509_EXTENSION_get_critical(ext))
            return 0;
    }

    return 1;
}

static int no_check(const X509_PURPOSE *xp, const X509 *x, int ca)
{
    return 1;
}

/*-
 * Various checks to see if one certificate issued the second.
 * This can be used to prune a set of possible issuer certificates
 * which have been looked up using some simple method such as by
 * subject name.
 * These are:
 * 1. Check issuer_name(subject) == subject_name(issuer)
 * 2. If akid(subject) exists check it matches issuer
 * 3. If key_usage(issuer) exists check it supports certificate signing
 * returns 0 for OK, positive for reason for mismatch, reasons match
 * codes for X509_verify_cert()
 */

int X509_check_issued(X509 *issuer, X509 *subject)
{
    if (X509_NAME_cmp(X509_get_subject_name(issuer),
                      X509_get_issuer_name(subject)))
        return X509_V_ERR_SUBJECT_ISSUER_MISMATCH;
    x509v3_cache_extensions(issuer);
    x509v3_cache_extensions(subject);

    if (subject->akid) {
        int ret = X509_check_akid(issuer, subject->akid);
        if (ret != X509_V_OK)
            return ret;
    }

    if (subject->ex_flags & EXFLAG_PROXY) {
        if (ku_reject(issuer, KU_DIGITAL_SIGNATURE))
            return X509_V_ERR_KEYUSAGE_NO_DIGITAL_SIGNATURE;
    } else if (ku_reject(issuer, KU_KEY_CERT_SIGN))
        return X509_V_ERR_KEYUSAGE_NO_CERTSIGN;
    return X509_V_OK;
}

int X509_check_akid(X509 *issuer, AUTHORITY_KEYID *akid)
{

    if (!akid)
        return X509_V_OK;

    /* Check key ids (if present) */
    if (akid->keyid && issuer->skid &&
        ASN1_OCTET_STRING_cmp(akid->keyid, issuer->skid))
        return X509_V_ERR_AKID_SKID_MISMATCH;
    /* Check serial number */
    if (akid->serial &&
        ASN1_INTEGER_cmp(X509_get_serialNumber(issuer), akid->serial))
        return X509_V_ERR_AKID_ISSUER_SERIAL_MISMATCH;
    /* Check issuer name */
    if (akid->issuer) {
        /*
         * Ugh, for some peculiar reason AKID includes SEQUENCE OF
         * GeneralName. So look for a DirName. There may be more than one but
         * we only take any notice of the first.
         */
        GENERAL_NAMES *gens;
        GENERAL_NAME *gen;
        X509_NAME *nm = NULL;
        int i;
        gens = akid->issuer;
        for (i = 0; i < sk_GENERAL_NAME_num(gens); i++) {
            gen = sk_GENERAL_NAME_value(gens, i);
            if (gen->type == GEN_DIRNAME) {
                nm = gen->d.dirn;
                break;
            }
        }
        if (nm && X509_NAME_cmp(nm, X509_get_issuer_name(issuer)))
            return X509_V_ERR_AKID_ISSUER_SERIAL_MISMATCH;
    }
    return X509_V_OK;
}

uint32_t X509_get_extension_flags(X509 *x)
{
    /* Call for side-effect of computing hash and caching extensions */
    X509_check_purpose(x, -1, -1);
    return x->ex_flags;
}

uint32_t X509_get_key_usage(X509 *x)
{
    /* Call for side-effect of computing hash and caching extensions */
    X509_check_purpose(x, -1, -1);
    if (x->ex_flags & EXFLAG_KUSAGE)
        return x->ex_kusage;
    return UINT32_MAX;
}

uint32_t X509_get_extended_key_usage(X509 *x)
{
    /* Call for side-effect of computing hash and caching extensions */
    X509_check_purpose(x, -1, -1);
    if (x->ex_flags & EXFLAG_XKUSAGE)
        return x->ex_xkusage;
    return UINT32_MAX;
}

const ASN1_OCTET_STRING *X509_get0_subject_key_id(X509 *x)
{
    /* Call for side-effect of computing hash and caching extensions */
    X509_check_purpose(x, -1, -1);
    return x->skid;
}
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/* tc-s12z.c -- Assembler code for the Freescale S12Z
   Copyright (C) 2018 Free Software Foundation, Inc.

   This file is part of GAS, the GNU Assembler.

   GAS is free software; you can redistribute it and/or modify
   it under the terms of the GNU General Public License as published by
   the Free Software Foundation; either version 3, or (at your option)
   any later version.

   GAS is distributed in the hope that it will be useful,
   but WITHOUT ANY WARRANTY; without even the implied warranty of
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
   GNU General Public License for more details.

   You should have received a copy of the GNU General Public License
   along with GAS; see the file COPYING.  If not, write to
   the Free Software Foundation, 51 Franklin Street - Fifth Floor,
   Boston, MA 02110-1301, USA.  */

#include "as.h"
#include "safe-ctype.h"
#include "subsegs.h"
#include "dwarf2dbg.h"
#include "opcode/s12z.h"
#include <stdint.h>
#include <limits.h>
#include <stdbool.h>

const char comment_chars[] = ";";

const char line_comment_chars[] = "#*";
const char line_separator_chars[] = "";

const char EXP_CHARS[] = "eE";
const char FLT_CHARS[] = "dD";

static char *fail_line_pointer;


/* Options and initialization.  */

const char *md_shortopts = "Sm:";

struct option md_longopts[] =
  {
  };

size_t md_longopts_size = sizeof (md_longopts);


relax_typeS md_relax_table[] =
  {

  };

/* This table describes all the machine specific pseudo-ops the assembler
   has to support.  The fields are:
   pseudo-op name without dot
   function to call to execute this pseudo-op
   Integer arg to pass to the function.  */
const pseudo_typeS md_pseudo_table[] =
  {
    {0, 0, 0}
  };


/* Get the target cpu for the assembler.  */
const char *
s12z_arch_format (void)
{
  return "elf32-s12z";
}

enum bfd_architecture
s12z_arch (void)
{
  return bfd_arch_s12z;
}

int
s12z_mach (void)
{
  return 0;
}

/* Listing header selected according to cpu.  */
const char *
s12z_listing_header (void)
{
  return "S12Z GAS ";
}

void
md_show_usage (FILE *stream ATTRIBUTE_UNUSED)
{
}

void
s12z_print_statistics (FILE *file ATTRIBUTE_UNUSED)
{
}

int
md_parse_option (int c ATTRIBUTE_UNUSED, const char *arg ATTRIBUTE_UNUSED)
{
  return 0;
}

symbolS *
md_undefined_symbol (char *name ATTRIBUTE_UNUSED)
{
  return 0;
}

const char *
md_atof (int type, char *litP, int *sizeP)
{
  return ieee_md_atof (type, litP, sizeP, TRUE);
}

valueT
md_section_align (asection *seg, valueT addr)
{
  int align = bfd_get_section_alignment (stdoutput, seg);
  return ((addr + (1 << align) - 1) & -(1 << align));
}

void
md_begin (void)
{
}

void
s12z_init_after_args (void)
{
}

/* Builtin help.  */


static char *
skip_whites (char *p)
{
  while (*p == ' ' || *p == '\t')
    p++;

  return p;
}



/* Start a new insn that contains at least 'size' bytes.  Record the
   line information of that insn in the dwarf2 debug sections.  */
static char *
s12z_new_insn (int size)
{
  char *f = frag_more (size);

  dwarf2_emit_insn (size);

  return f;
}



static int lex_reg_name (uint16_t which, int *reg);

static int
lex_constant (long *v)
{
  char *end = NULL;
  char *p = input_line_pointer;

  /* A constant may not have the same value as a register
     eg: "d6" */
  int dummy;
  if (lex_reg_name (~0, &dummy))
    {
      input_line_pointer = p;
      return 0;
    }

  errno = 0;
  *v = strtol (p, &end, 0);
  if (errno == 0 && end != p)
    {
      input_line_pointer = end;
      return 1;
    }

  return 0;
}

static int
lex_match (char x)
{
  char *p = input_line_pointer;
  if (*p != x)
    return 0;

  input_line_pointer++;
  return 1;
}


static int
lex_expression (expressionS *exp)
{
  char *ilp = input_line_pointer;
  int dummy;
  exp->X_op = O_absent;

  if (lex_match ('#'))
    goto fail;

  if (lex_reg_name (~0, &dummy))
    goto fail;

  expression (exp);
  if (exp->X_op != O_absent)
    return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

/* immediate operand */
static int
lex_imm (long *v)
{
  char *ilp = input_line_pointer;

  if (*input_line_pointer != '#')
    goto fail;

  input_line_pointer++;
  expressionS exp;
  if (!lex_expression (&exp))
    goto fail;

  if (exp.X_op != O_constant)
    goto fail;

  *v = exp.X_add_number;
  return 1;

fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

/* Short mmediate operand */
static int
lex_imm_e4 (long *val)
{
  char *ilp = input_line_pointer;
  if ((lex_imm (val)))
    {
      if ((*val == -1) || (*val > 0 && *val <= 15))
	{
	  return 1;
	}
    }
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

static int
lex_match_string (const char *s)
{
  char *p = input_line_pointer;
  while (p != 0 && *p != '\t' && *p != ' ' && *p != '\0')
    {
      p++;
    }

  size_t len = p - input_line_pointer;
  if (len != strlen (s))
    return 0;

  if (0 == strncasecmp (s, input_line_pointer, len))
    {
      input_line_pointer = p;
      return 1;
    }

  return 0;
}

/* Parse a register name.
   WHICH is a ORwise combination of the registers which are accepted.
   ~0 accepts all.
   On success, REG will be filled with the index of the register which
   was successfully scanned.
*/
static int
lex_reg_name (uint16_t which, int *reg)
{
  char *p = input_line_pointer;
  while (p != 0 &&
	 ((*p >= 'a' && *p <='z') || (*p >= '0' && *p <= '9') || (*p >= 'A' && *p <='Z')))
    {
      p++;
    }

  int len = p - input_line_pointer;

  if (len <= 0)
    return 0;

  int i;
  for (i = 0; i < S12Z_N_REGISTERS; ++i)
    {
      gas_assert (registers[i].name);

      if (0 == strncasecmp (registers[i].name, input_line_pointer, len))
	{
	  if ((0x1U << i) & which)
	    {
	      input_line_pointer = p;
	      *reg = i;
	      return 1;
	    }
	}
    }

  return 0;
}

static int
lex_force_match (char x)
{
  char *p = input_line_pointer;
  if (*p != x)
    {
      as_bad (_("Expecting '%c'"), x);
      return 0;
    }

  input_line_pointer++;
  return 1;
}

static int
lex_opr (uint8_t *buffer, int *n_bytes, expressionS *exp)
{
  char *ilp = input_line_pointer;
  uint8_t *xb = buffer;
  int reg;
  long imm;
  exp->X_op = O_absent;
  *n_bytes = 0;
  *xb = 0;
  if (lex_imm_e4 (&imm))
    {
      if (imm > 0)
	*xb = imm;
      else
	*xb = 0;
      *xb |= 0x70;
      *n_bytes = 1;
      return 1;
    }
  else if (lex_reg_name (REG_BIT_Dn, &reg))
    {
      *xb = reg;
      *xb |= 0xb8;
      *n_bytes = 1;
      return 1;
    }
  else if (lex_match ('['))
    {
      if (lex_expression (exp))
	{
	  long c = exp->X_add_number;
	  if (lex_match (','))
	    {
	      if (lex_reg_name (REG_BIT_XYSP, &reg))
		{
		  int i;
		  if (c <= 255 && c >= -256)
		    {
		      *n_bytes = 2;
		      *xb |= 0xc4;
		    }
		  else
		    {
		      *n_bytes = 4;
		      *xb |= 0xc6;
		    }
		  *xb |= (reg - REG_X) << 4;

		  if (c < 0)
		    *xb |= 0x01;
		  for (i = 1; i < *n_bytes ; ++i)
		    {
		      buffer[i] = c >> (8 * (*n_bytes - i - 1));
		    }
		}
	      else
		{
		  as_bad (_("Bad operand for constant offset"));
		  goto fail;
		}
	    }
	  else
	    {
	      *xb = 0xfe;
	      *n_bytes = 4;
	      buffer[1] = c >> 16;
	      buffer[2] = c >> 8;
	      buffer[3] = c;
	    }
	}
      else if (lex_reg_name (REG_BIT_Dn, &reg))
	{
	  if (!lex_force_match (','))
	    goto fail;

	  int reg2;
	  if (lex_reg_name (REG_BIT_XY, &reg2))
	    {
	      *n_bytes = 1;
	      *xb = reg;
	      *xb |= (reg2 - REG_X) << 4;
	      *xb |= 0xc8;
	    }
	  else
	    {
	      as_bad (_("Invalid operand for register offset"));
	      goto fail;
	    }
	}
      else
	{
	  goto fail;
	}
      if (!lex_force_match (']'))
	goto fail;
      return 1;
    }
  else if (lex_match ('('))
    {
      long c;
      if (lex_constant (&c))
	{
	  if (!lex_force_match (','))
	    goto fail;
	  int reg2;
	  if (lex_reg_name (REG_BIT_XYSP, &reg2))
	    {
	      if (reg2 != REG_P && c >= 0 && c <= 15)
		{
		  *n_bytes = 1;
		  *xb = 0x40;
		  *xb |= (reg2 - REG_X) << 4;
		  *xb |= c;
		}
	      else if (c >= -256 && c <= 255)
		{
		  *n_bytes = 2;
		  *xb = 0xc0;
		  *xb |= (reg2 - REG_X) << 4;
		  if (c < 0)
		    *xb |= 0x01;
		  buffer[1] = c;
		}
	      else
		{
		  *n_bytes = 4;
		  *xb = 0xc2;
		  *xb |= (reg2 - REG_X) << 4;
		  buffer[1] = c >> 16;
		  buffer[2] = c >> 8;
		  buffer[3] = c;
		}
	    }
	  else if (lex_reg_name (REG_BIT_Dn, &reg2))
	    {
	      if (c >= -1 * (long) (0x1u << 17)
		  &&
		  c < (long) (0x1u << 17) - 1)
		{
		  *n_bytes = 3;
		  *xb = 0x80;
		  *xb |= reg2;
		  *xb |= ((c >> 16) & 0x03) << 4;
		  buffer[1] = c >> 8;
		  buffer[2] = c;
		}
	      else
		{
		  *n_bytes = 4;
		  *xb = 0xe8;
		  *xb |= reg2;
		  buffer[1] = c >> 16;
		  buffer[2] = c >> 8;
		  buffer[3] = c;
		}
	    }
	  else
	    {
	      as_bad (_("Bad operand for constant offset"));
	      goto fail;
	    }
	}
      else if (lex_reg_name (REG_BIT_Dn, &reg))
	{
	  if (lex_match (','))
	    {
	      int reg2;
	      if (lex_reg_name (REG_BIT_XYS, &reg2))
		{
		  *n_bytes = 1;
		  *xb = 0x88;
		  *xb |= (reg2 - REG_X) << 4;
		  *xb |= reg;
		}
	      else
		{
		  as_bad (_("Invalid operand for register offset"));
		  goto fail;
		}
	    }
	  else
	    {
	      goto fail;
	    }
	}
      else if (lex_reg_name (REG_BIT_XYS, &reg))
	{
	  if (lex_match ('-'))
	    {
	      if (reg == REG_S)
		{
		  as_bad (_("Invalid register for postdecrement operation"));
		  goto fail;
		}
	      *n_bytes = 1;
	      if (reg == REG_X)
		*xb = 0xc7;
	      else if (reg == REG_Y)
		*xb = 0xd7;
	    }
	  else if (lex_match ('+'))
	    {
	      *n_bytes = 1;
	      if (reg == REG_X)
		*xb = 0xe7;
	      else if (reg == REG_Y)
		*xb = 0xf7;
	      else if (reg == REG_S)
		*xb = 0xff;
	    }
	  else
	    {
	      goto fail;
	    }
	}
      else if (lex_match ('+'))
	{
	  if (lex_reg_name (REG_BIT_XY, &reg))
	    {
	      *n_bytes = 1;
	      if (reg == REG_X)
		*xb = 0xe3;
	      else if (reg == REG_Y)
		*xb = 0xf3;
	    }
	  else
	    {
	      as_bad (_("Invalid register for preincrement operation"));
	      goto fail;
	    }
	}
      else if (lex_match ('-'))
	{
	  if (lex_reg_name (REG_BIT_XYS, &reg))
	    {
	      *n_bytes = 1;
	      if (reg == REG_X)
		*xb = 0xc3;
	      else if (reg == REG_Y)
		*xb = 0xd3;
	      else if (reg == REG_S)
		*xb = 0xfb;
	    }
	  else
	    {
	      as_bad (_("Invalid register for predecrement operation"));
	      goto fail;
	    }
	}
      else
	{
	  goto fail;
	}

      if (! lex_match (')'))
	goto fail;
      return 1;
    }
  else if (lex_expression (exp))
    {
      *xb = 0xfa;
      *n_bytes = 4;
      buffer[1] = 0;
      buffer[2] = 0;
      buffer[3] = 0;
      if (exp->X_op == O_constant)
	{
	  if (exp->X_add_number < (0x1U << 14))
	    {
	      *xb = 0x00;
	      *n_bytes = 2;
	      *xb |= exp->X_add_number >> 8;
	      buffer[1] = exp->X_add_number;
	    }
	  else if (exp->X_add_number < (0x1U << 19))
	    {
	      *xb = 0xf8;
	      if (exp->X_add_number & (0x1U << 17))
		*xb |= 0x04;
	      if (exp->X_add_number & (0x1U << 16))
		*xb |= 0x01;
	      *n_bytes = 3;
	      buffer[1] = exp->X_add_number >> 8;
	      buffer[2] = exp->X_add_number;
	    }
	  else
	    {
	      *xb = 0xfa;
	      *n_bytes = 4;
	      buffer[1] = exp->X_add_number >> 16;
	      buffer[2] = exp->X_add_number >> 8;
	      buffer[3] = exp->X_add_number;
	    }
	}
      return 1;
    }

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

static int
lex_offset (long *val)
{
  char *end = NULL;
  char *p = input_line_pointer;

  if (*p++ != '*')
    return 0;

  if (*p != '+' && *p != '-')
    return 0;

  bool negative =  (*p == '-');
  p++;

  errno = 0;
  *val = strtol (p, &end, 0);
  if (errno == 0)
    {
      if (negative)
	*val *= -1;
      input_line_pointer = end;
      return 1;
    }

  return 0;
}



struct instruction;

typedef int (*parse_operand_func) (const struct instruction *);

struct instruction
{
  const char *name;

  /* The "page" to which the instruction belongs.
     This is also only a hint.  Some instructions might have modes in both
     pages... */
  char page;

  /* This is a hint - and only a hint - about the opcode of the instruction.
     The parse_operand_func is free to ignore it.
  */
  uint8_t opc;

  parse_operand_func parse_operands;

  /* Some instructions can be encoded with a different opcode */
  uint8_t alt_opc;
};

static int
no_operands (const struct instruction *insn)
{
  if (*input_line_pointer != '\0')
    {
      as_bad (_("Garbage at end of instruction"));
      return 0;
    }

  char *f = s12z_new_insn (insn->page);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc, 1);

  return 1;
}

/* Emit the code for an OPR address mode operand */
static char *
emit_opr (char *f, const uint8_t *buffer, int n_bytes, expressionS *exp)
{
  int i;
  number_to_chars_bigendian (f++, buffer[0], 1);
  if (exp->X_op != O_absent && exp->X_op != O_constant)
    {
      fix_new_exp (frag_now,
		   f - frag_now->fr_literal,
		   3,
		   exp,
		   FALSE,
		   BFD_RELOC_24);
    }
  for (i = 1; i < n_bytes; ++i)
    number_to_chars_bigendian (f++,  buffer[i], 1);

  return f;
}

/* Emit the code for a 24 bit direct address operand */
static char *
emit_ext24 (char *f, long v)
{
  number_to_chars_bigendian (f, v, 3);

  return f + 3;
}

static int
opr (const struct instruction *insn)
{
  uint8_t buffer[4];
  int n_bytes;
  expressionS exp;
  if (lex_opr (buffer, &n_bytes, &exp))
    {
      /* Large constant direct values are more efficiently encoded as ext24 mode.
	 Otherwise a decision has to be deferred to a relax. */
      if (exp.X_op == O_constant
	  && buffer[0] == 0xFA
	  && insn->alt_opc != 0)
	{
	  char *f = s12z_new_insn (4);

	  /* I don't think there are any instances of page 2 opcodes in this case */
	  gas_assert (insn->page == 1);

	  number_to_chars_bigendian (f++, insn->alt_opc, 1);

	  emit_ext24 (f, exp.X_add_number);
	}
      else
	{
	  char *f = s12z_new_insn (n_bytes + 1);
	  number_to_chars_bigendian (f++, insn->opc, 1);

	  emit_opr (f, buffer, n_bytes, &exp);
	}
      return 1;
    }

  return 0;
}

/* Parse a 15 bit offset, as an expression.
   LONG_DISPLACEMENT will be set to true if the offset is wider than 7 bits.
   */
static int
lex_15_bit_offset (bool *long_displacement, expressionS *exp)
{
  char *ilp = input_line_pointer;

  long val;
  if (lex_offset (&val))
    {
      exp->X_op = O_absent;
      exp->X_add_number = val;
    }
  else if (lex_expression (exp))
    {
      if (exp->X_op == O_constant)
	{
	  val = exp->X_add_number;
	}
      else
	{
	  /* If a symbol was parsed we don't know the displacement.
	     We have to assume it is long, and relax it later if possible. */
	  *long_displacement = true;
	  return 1;
	}
    }
  else
    {
      exp->X_op = O_absent;
      goto fail;
    }

  if (val > 0x3FFF || val < -0x4000)
    {
      as_fatal (_("Offset is outside of 15 bit range"));
      return 0;
    }

  *long_displacement = (val > 63 || val < -64);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

static void
emit_15_bit_offset (char *f, int where, expressionS *exp)
{
  gas_assert (exp);
  if (exp->X_op != O_absent && exp->X_op != O_constant)
    {
      exp->X_add_number += where;
      fixS *fix = fix_new_exp (frag_now,
		   f - frag_now->fr_literal,
		   2,
		   exp,
		   TRUE,
		   BFD_RELOC_16_PCREL);
      fix->fx_addnumber = where - 2;
    }
  else
    {
      long val = exp->X_add_number;
      bool long_displacement = (val > 63 || val < -64);
      if (long_displacement)
	val |= 0x8000;
      else
	val &= 0x7F;

      number_to_chars_bigendian (f++, val, long_displacement ? 2 : 1);
    }
}

static int
rel (const struct instruction *insn)
{
  bool long_displacement;

  expressionS exp;
  if (! lex_15_bit_offset (&long_displacement, &exp))
    return 0;

  char *f = s12z_new_insn (long_displacement ? 3 : 2);
  number_to_chars_bigendian (f++, insn->opc, 1);
  emit_15_bit_offset (f, 3, &exp);
  return 1;
}

static int
reg_inh (const struct instruction *insn)
{
  int reg;
  if (lex_reg_name (REG_BIT_Dn, &reg))
    {
      char *f = s12z_new_insn (insn->page);
      if (insn->page == 2)
	number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

      number_to_chars_bigendian (f++, insn->opc + reg, 1);
      return 1;
    }

  return 0;
}


/* Special case for CLR X and CLR Y */
static int
clr_xy (const struct instruction *insn ATTRIBUTE_UNUSED)
{
  int reg;
  if (lex_reg_name (REG_BIT_XY, &reg))
    {
      char *f = s12z_new_insn (1);
      number_to_chars_bigendian (f, 0x9a + reg - REG_X, 1);
      return 1;
    }

  return 0;
}

/* Some instructions have a suffix like ".l", ".b", ".w" etc
   which indicates the size of the operands. */
static int
size_from_suffix  (const struct instruction *insn, int idx)
{
  const char *dot = strchr (insn->name, '.');

  if (dot == NULL)
    return -3;

  int size = -2;
  switch (dot[1 + idx])
    {
    case 'b':
      size = 1;
      break;
    case 'w':
      size = 2;
      break;
    case 'p':
      size = 3;
      break;
    case 'l':
      size = 4;
      break;
    default:
      as_fatal (_("Bad size"));
    };

  return size;
}

static int
mul_reg_reg_reg (const struct instruction *insn)
{
  char *ilp = input_line_pointer;

  int Dd;
  if (!lex_reg_name (REG_BIT_Dn, &Dd))
    goto fail;

  if (!lex_match (','))
    goto fail;

  int Dj;
  if (!lex_reg_name (REG_BIT_Dn, &Dj))
    goto fail;

  if (!lex_match (','))
    goto fail;

  int Dk;
  if (!lex_reg_name (REG_BIT_Dn, &Dk))
    goto fail;

  char *f = s12z_new_insn (insn->page + 1);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc + Dd, 1);
  const char *dot = strchrnul (insn->name, '.');
  uint8_t mb ;
  switch (dot[-1])
    {
    case 's':
      mb = 0x80;
      break;
    case 'u':
      mb = 0x00;
      break;
    default:
      as_fatal (_("BAD MUL"));
      break;
    }

  mb |= Dj << 3;
  mb |= Dk;

  number_to_chars_bigendian (f++, mb, 1);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}


static int
mul_reg_reg_imm (const struct instruction *insn)
{
  char *ilp = input_line_pointer;

  int Dd;
  if (!lex_reg_name (REG_BIT_Dn, &Dd))
    goto fail;

  if (!lex_match (','))
    goto fail;

  int Dj;
  if (!lex_reg_name (REG_BIT_Dn, &Dj))
    goto fail;

  if (!lex_match (','))
    goto fail;

  long imm;
  if (!lex_imm (&imm))
    goto fail;


  int size = size_from_suffix (insn, 0);

  char *f = s12z_new_insn (insn->page + 1 + size);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc + Dd, 1);
  uint8_t mb = 0x44;
  const char *dot = strchrnul (insn->name, '.');
  switch (dot[-1])
    {
    case 's':
      mb |= 0x80;
      break;
    case 'u':
      mb |= 0x00;
      break;
    default:
      as_fatal (_("BAD MUL"));
      break;
    }

  mb |= Dj << 3;
  mb |= size  - 1;

  number_to_chars_bigendian (f++, mb, 1);
  number_to_chars_bigendian (f++, imm, size);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}


static int
mul_reg_reg_opr (const struct instruction *insn)
{
  char *ilp = input_line_pointer;

  int Dd;
  if (!lex_reg_name (REG_BIT_Dn, &Dd))
    goto fail;

  if (!lex_match (','))
    goto fail;

  int Dj;
  if (!lex_reg_name (REG_BIT_Dn, &Dj))
    goto fail;

  if (!lex_match (','))
    goto fail;

  uint8_t buffer[4];
  int n_bytes;
  expressionS exp;
  if (!lex_opr (buffer, &n_bytes, &exp))
    goto fail;

  int size = size_from_suffix (insn, 0);

  char *f = s12z_new_insn (insn->page + 1 + n_bytes);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc + Dd, 1);
  uint8_t mb = 0x40;
  const char *dot = strchrnul (insn->name, '.');
  switch (dot[-1])
    {
    case 's':
      mb |= 0x80;
      break;
    case 'u':
      mb |= 0x00;
      break;
    default:
      as_fatal (_("BAD MUL"));
      break;
    }

  mb |= Dj << 3;
  mb |= size  - 1;

  number_to_chars_bigendian (f++, mb, 1);

  emit_opr (f, buffer, n_bytes, &exp);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}

static int
mul_reg_opr_opr (const struct instruction *insn)
{
  char *ilp = input_line_pointer;

  int Dd;
  if (!lex_reg_name (REG_BIT_Dn, &Dd))
    goto fail;

  if (!lex_match (','))
    goto fail;

  uint8_t buffer1[4];
  int n_bytes1;
  expressionS exp1;
  if (!lex_opr (buffer1, &n_bytes1, &exp1))
    goto fail;

  if (!lex_match (','))
    goto fail;

  uint8_t buffer2[4];
  int n_bytes2;
  expressionS exp2;
  if (!lex_opr (buffer2, &n_bytes2, &exp2))
    goto fail;

  int size1 = size_from_suffix (insn, 0);
  int size2 = size_from_suffix (insn, 1);

  char *f = s12z_new_insn (insn->page + 1 + n_bytes1 + n_bytes2);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc + Dd, 1);
  uint8_t mb = 0x42;
  const char *dot = strchrnul (insn->name, '.');
  switch (dot[-1])
    {
    case 's':
      mb |= 0x80;
      break;
    case 'u':
      mb |= 0x00;
      break;
    default:
      as_fatal (_("BAD MUL"));
      break;
    }

  mb |= (size1  - 1) << 4;
  mb |= (size2  - 1) << 2;
  number_to_chars_bigendian (f++, mb, 1);

  f = emit_opr (f, buffer1, n_bytes1, &exp1);
  f = emit_opr (f, buffer2, n_bytes2, &exp2);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}


#define REG_BIT_GRP0				\
  ((0x1U << REG_D2) |				\
   (0x1U << REG_D3) |				\
   (0x1U << REG_CCH) |				\
   (0x1U << REG_CCL) |				\
   (0x1U << REG_D0) |				\
   (0x1U << REG_D1))

#define REG_BIT_GRP1				\
  ((0x1U << REG_D4) |				\
   (0x1U << REG_D5) |				\
   (0x1U << REG_D6) |				\
   (0x1U << REG_D7) |				\
   (0x1U << REG_X) |				\
   (0x1U << REG_Y))

static const uint8_t reg_map [] =
  {
    0x02,  // D2
    0x01,  // D3
    0x20,
    0x10,  // D5
    0x08,  // D0
    0x04,  // D1
    0x08,  // D6
    0x04,  // D7
    0x02,
    0x01,  // Y
    0x00,
    0x00,
    0x20,   // CCH
    0x10,   // CCL
    0x00
  };

static  int
lex_reg_list (uint16_t grp, uint16_t *reg_bits)
{
  if (lex_match (','))
    {
      int reg;
      if (!lex_reg_name (grp, &reg))
	return 0;
      *reg_bits |= 0x1u << reg;
      lex_reg_list (grp, reg_bits);
    }

  /* Empty list */
  return 1;
}

static int
psh_pull (const struct instruction *insn)
{
  uint8_t pb =
    (0 == strcmp ("pul", insn->name)) ? 0x80: 0x00;

  if (lex_match_string ("all16b"))
    {
      pb |= 0x40;
    }
  else if (lex_match_string ("all"))
    {
      /* Nothing to do */
    }
  else
    {
      int reg1;
      if (!lex_reg_name (REG_BIT_GRP1 | REG_BIT_GRP0, &reg1))
	goto fail;
      uint16_t admitted_group = 0;

      if ((0x1U << reg1) & REG_BIT_GRP1)
	admitted_group = REG_BIT_GRP1;
      else if ((0x1U << reg1) & REG_BIT_GRP0)
	admitted_group = REG_BIT_GRP0;

      uint16_t reg_bits = 0x1 << reg1;
      if (!lex_reg_list (admitted_group, &reg_bits))
	goto fail;

      if (reg_bits & REG_BIT_GRP1)
	pb |= 0x40;

      int i;
      for (i = 0; i < 16; ++i)
	{
	  if (reg_bits & (0x1u << i))
	    pb |= reg_map[i];
	}
    }

  char *f = s12z_new_insn (2);
  number_to_chars_bigendian (f++, insn->opc, 1);
  number_to_chars_bigendian (f++, pb, 1);
  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  return 0;
}


static int
tfr (const struct instruction *insn)
{
  int reg1;
  if (!lex_reg_name (~0, &reg1))
    goto fail;

  if (!lex_match (','))
    goto fail;

  int reg2;
  if (!lex_reg_name (~0, &reg2))
    goto fail;

  if ((0 == strcasecmp ("sex", insn->name))
      || (0 == strcasecmp ("zex", insn->name)))
    {
      if (registers[reg1].bytes >= registers[reg2].bytes)
	{
	  as_bad (_("Source register for %s must be smaller that the destination register"),
		  insn->name);
	  goto fail;
	}
    }

  char *f = s12z_new_insn (1 + insn->page);
  if (insn->page == 2)
    number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

  number_to_chars_bigendian (f++, insn->opc, 1);
  number_to_chars_bigendian (f++, reg1 << 4 | reg2, 1);

  return 1;

 fail:
  fail_line_pointer = input_line_pointer;
  return 0;
}

static int
imm8 (const struct instruction *insn)
{
  long imm;
  if (! lex_imm (&imm))
    return 0;
  if (imm > 127 || imm < -128)
    {
      as_bad (_("Immediate value %ld is out of range for instruction %s"),
	      imm, insn->name);
    }

  char *f = s12z_new_insn (2);
  number_to_chars_bigendian (f++, insn->opc, 1);
  number_to_chars_bigendian (f++, imm, 1);

  return 1;
}

static int
reg_imm (const struct instruction *insn, int allowed_reg)
{
  char *ilp = input_line_pointer;
  int reg;
  if (lex_reg_name (allowed_reg, &reg))
    {
      if (!lex_force_match (','))
	goto fail;
      long imm;
      if (! lex_imm (&imm))
	goto fail;

      short size = registers[reg].bytes;
      char *f = s12z_new_insn (insn->page + size);
      if (insn->page == 2)
	number_to_chars_bigendian (f++, PAGE2_PREBYTE, 1);

      number_to_chars_bigendian (f++, insn->opc + reg, 1);
      number_to_chars_bigendian (f++, imm, size);
      return 1;
    }

 fail:
  fail_line_pointer = input_line_pointer;
  input_line_pointer = ilp;
  return 0;
}


static int
regd_imm (const struct instruction *insn)
{
  return reg_imm (insn, REG_BIT_Dn);
}

static int
regdxy_imm (const struct instruction *insn)
{
  return reg_imm (insn, REG_BIT_Dn | REG_BIT_XY);
}


static int
regs_imm (const struct instruction *insn)
{