git-svn-id: https://vsmartcard.svn.sourceforge.net/svnroot/vsmartcard@56 96b47cad-a561-4643-ad3b-153ac7d7599c
499 lines
14 KiB
C
499 lines
14 KiB
C
/*
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* Copyright (C) 2010 Frank Morgner
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*
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* This file is part of ccid.
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*
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* ccid is free software: you can redistribute it and/or modify it under the
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* terms of the GNU General Public License as published by the Free Software
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* Foundation, either version 3 of the License, or (at your option) any later
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* version.
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*
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* ccid is distributed in the hope that it will be useful, but WITHOUT ANY
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* WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS
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* FOR A PARTICULAR PURPOSE. See the GNU General Public License for more
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* details.
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*
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* You should have received a copy of the GNU General Public License along with
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* ccid. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "sm.h"
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#include <arpa/inet.h>
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#include <opensc/asn1.h>
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#include <opensc/log.h>
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#include <stdlib.h>
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#include <string.h>
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static const struct sc_asn1_entry c_sm_capdu[] = {
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{ "Padding-content indicator followed by cryptogram",
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SC_ASN1_OCTET_STRING, SC_ASN1_CTX|0x07, SC_ASN1_OPTIONAL , NULL, NULL },
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{ "Protected Le",
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SC_ASN1_INTEGER , SC_ASN1_CTX|0x17, SC_ASN1_OPTIONAL|SC_ASN1_UNSIGNED, NULL, NULL },
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{ "Cryptographic Checksum",
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SC_ASN1_OCTET_STRING, SC_ASN1_CTX|0x0E, SC_ASN1_OPTIONAL , NULL, NULL },
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{ NULL , 0 , 0 , 0 , NULL , NULL }
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};
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static const struct sc_asn1_entry c_sm_rapdu[] = {
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{ "Padding-content indicator followed by cryptogram" ,
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SC_ASN1_OCTET_STRING, SC_ASN1_CTX|0x07, SC_ASN1_OPTIONAL , NULL, NULL },
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{ "Processing Status",
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SC_ASN1_INTEGER , SC_ASN1_CTX|0x19, SC_ASN1_OPTIONAL|SC_ASN1_UNSIGNED, NULL, NULL },
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{ "Cryptographic Checksum",
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SC_ASN1_OCTET_STRING, SC_ASN1_CTX|0x0E, SC_ASN1_OPTIONAL , NULL, NULL },
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{ NULL, 0, 0, 0, NULL, NULL }
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};
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void bin_log(sc_context_t *ctx, const char *label, const u8 *data, size_t len)
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{
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char buf[1024];
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sc_hex_dump(ctx, data, len, buf, sizeof buf);
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sc_debug(ctx, "%s (%u bytes):\n%s"
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"======================================================================",
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label, len, buf);
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}
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BUF_MEM *
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add_iso_pad(const BUF_MEM * m, int block_size)
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{
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BUF_MEM * out = NULL;
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int p_len;
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if (!m)
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goto err;
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/* calculate length of padded message */
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p_len = (m->length / block_size) * block_size + block_size;
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out = BUF_MEM_create(p_len);
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if (!out)
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goto err;
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memcpy(out->data, m->data, m->length);
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/* now add iso padding */
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memset(out->data + m->length, 0x80, 1);
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memset(out->data + m->length + 1, 0, p_len - m->length - 1);
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return out;
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err:
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if (out)
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BUF_MEM_free(out);
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return NULL;
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}
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BUF_MEM * add_padding(const struct sm_ctx *ctx, const char *data, size_t datalen)
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{
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BUF_MEM *tmp = BUF_MEM_create_init(data, datalen);
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BUF_MEM *padded = NULL;
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switch (ctx->padding_indicator) {
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case SM_NO_PADDING:
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padded = tmp;
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tmp = NULL;
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break;
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case SM_ISO_PADDING:
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padded = add_iso_pad(tmp, ctx->block_length);
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/* fall through */
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default:
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if (tmp) {
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sc_mem_clear(tmp->data, tmp->max);
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BUF_MEM_free(tmp);
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}
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break;
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}
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return padded;
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}
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int no_padding(u8 padding_indicator, const u8 *data, size_t datalen)
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{
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if (!datalen || !data)
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return SC_ERROR_INVALID_ARGUMENTS;
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size_t len;
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switch (padding_indicator) {
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case SM_NO_PADDING:
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len = datalen;
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break;
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case SM_ISO_PADDING:
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for (len = datalen;
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len && (data[len-1] == 0);
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len--) { };
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if (data[len-1] != 0x80)
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return SC_ERROR_INVALID_DATA;
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break;
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default:
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return SC_ERROR_NOT_SUPPORTED;
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}
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return len;
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}
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u8 * format_le(size_t le_len, size_t le, struct sc_asn1_entry *le_entry)
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{
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u8 * lebuf = malloc(le_len);
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if (lebuf) {
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switch (le_len) {
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case 1:
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lebuf[0] = le;
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break;
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case 2:
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lebuf[0] = htons(le) >> 8;
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lebuf[1] = htons(le) & 0xff;
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break;
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case 3:
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lebuf[0] = 0x00;
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lebuf[1] = htons(le) >> 8;
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lebuf[2] = htons(le) & 0xff;
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break;
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default:
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free(lebuf);
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return NULL;
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}
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sc_format_asn1_entry(le_entry, lebuf, &le_len, SC_ASN1_PRESENT);
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}
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return lebuf;
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}
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BUF_MEM * prefix_buf(u8 prefix, BUF_MEM *buf)
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{
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if (!buf) return NULL;
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BUF_MEM *cat = BUF_MEM_create(buf->length + 1);
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if (cat) {
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cat->data[0] = prefix;
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memcpy(cat->data + 1, buf->data, buf->length);
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cat->length = buf->length + 1;
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}
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return cat;
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}
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BUF_MEM * format_data(sc_card_t *card, const struct sm_ctx *ctx, const u8 *data, size_t datalen,
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struct sc_asn1_entry *formatted_encrypted_data_entry)
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{
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int r;
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if (!ctx)
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return NULL;
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BUF_MEM *pad_data = add_padding(ctx, (char *) data, datalen);
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BUF_MEM *enc_data = BUF_MEM_new();
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if (!pad_data || !enc_data)
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return NULL;
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r = ctx->encrypt(card, ctx, (u8 *) pad_data->data, pad_data->length,
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(u8 **) &enc_data->data);
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if (r < 0)
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return NULL;
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enc_data->length = r;
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BUF_MEM *indicator_encdata = prefix_buf(ctx->padding_indicator, enc_data);
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sc_mem_clear(pad_data->data, pad_data->max);
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BUF_MEM_free(pad_data);
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BUF_MEM_free(enc_data);
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if (indicator_encdata)
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sc_format_asn1_entry(formatted_encrypted_data_entry,
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indicator_encdata->data, &indicator_encdata->length,
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SC_ASN1_PRESENT);
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return indicator_encdata;
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}
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BUF_MEM * format_head(const struct sm_ctx *ctx, const sc_apdu_t *apdu)
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{
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char head[4];
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head[0] = apdu->cla;
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head[1] = apdu->ins;
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head[2] = apdu->p1;
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head[3] = apdu->p2;
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return add_padding(ctx, head, sizeof head);
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}
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int sm_encrypt(const struct sm_ctx *ctx, sc_card_t *card,
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const sc_apdu_t *apdu, sc_apdu_t *sm_apdu)
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{
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struct sc_asn1_entry sm_capdu[4];
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u8 *le = NULL, *sm_data = NULL;
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size_t oldlen, sm_data_len;
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BUF_MEM *fdata = NULL, *mac_data = NULL, *mac = NULL, *tmp = NULL;
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int r;
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if (!apdu || !ctx || !card || !card->slot || !sm_apdu) {
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r = SC_ERROR_INVALID_ARGUMENTS;
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goto err;
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}
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sc_copy_asn1_entry(c_sm_capdu, sm_capdu);
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sm_apdu->sensitive = 0;
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sm_apdu->resp = apdu->resp;
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sm_apdu->resplen = apdu->resplen;
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sm_apdu->control = apdu->control;
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sm_apdu->flags = apdu->flags;
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sm_apdu->cla = 0x0C;
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sm_apdu->ins = apdu->ins;
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sm_apdu->p1 = apdu->p1;
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sm_apdu->p2 = apdu->p2;
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mac_data = format_head(ctx, apdu);
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if (!mac_data) {
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sc_error(card->ctx, "Could not format header of SM apdu.");
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r = SC_ERROR_WRONG_PADDING;
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goto err;
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}
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/* get le and data depending on the case of the unsecure command */
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switch (apdu->cse) {
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case SC_APDU_CASE_1:
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break;
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case SC_APDU_CASE_2_SHORT:
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le = format_le(1, apdu->le, sm_capdu + 1);
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if (!le) {
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sc_error(card->ctx, "Could not format Le of SM apdu.");
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r = SC_ERROR_WRONG_LENGTH;
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goto err;
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}
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break;
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case SC_APDU_CASE_2_EXT:
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if (card->slot->active_protocol == SC_PROTO_T0) {
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/* T0 extended APDUs look just like short APDUs */
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le = format_le(1, apdu->le, sm_capdu + 1);
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if (!le) {
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sc_error(card->ctx, "Could not format Le of SM apdu.");
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r = SC_ERROR_WRONG_LENGTH;
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goto err;
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}
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} else {
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/* in case of T1 always use 3 bytes for length */
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le = format_le(3, apdu->le, sm_capdu + 1);
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if (!le) {
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sc_error(card->ctx, "Could not format Le of SM apdu.");
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r = SC_ERROR_WRONG_LENGTH;
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goto err;
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}
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}
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break;
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case SC_APDU_CASE_3_SHORT:
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case SC_APDU_CASE_3_EXT:
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fdata = format_data(card, ctx, apdu->data, apdu->datalen,
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sm_capdu + 0);
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if (!fdata) {
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sc_error(card->ctx, "Could not format data of SM apdu.");
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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break;
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case SC_APDU_CASE_4_SHORT:
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/* in case of T0 no Le byte is added */
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if (card->slot->active_protocol != SC_PROTO_T0) {
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le = format_le(1, apdu->le, sm_capdu + 1);
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if (!le) {
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sc_error(card->ctx, "Could not format Le of SM apdu.");
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r = SC_ERROR_WRONG_LENGTH;
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goto err;
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}
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}
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fdata = format_data(card, ctx, apdu->data, apdu->datalen,
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sm_capdu + 0);
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if (!fdata) {
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sc_error(card->ctx, "Could not format data of SM apdu.");
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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break;
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case SC_APDU_CASE_4_EXT:
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if (card->slot->active_protocol == SC_PROTO_T0) {
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/* again a T0 extended case 4 APDU looks just
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* like a short APDU, the additional data is
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* transferred using ENVELOPE and GET RESPONSE */
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} else {
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/* only 2 bytes are use to specify the length of the
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* expected data */
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le = format_le(2, apdu->le, sm_capdu + 1);
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if (!le) {
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sc_error(card->ctx, "Could not format Le of SM apdu.");
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r = SC_ERROR_WRONG_LENGTH;
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goto err;
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}
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}
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fdata = format_data(card, ctx, apdu->data, apdu->datalen,
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sm_capdu + 0);
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if (!fdata) {
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sc_error(card->ctx, "Could not format data of SM apdu.");
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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break;
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default:
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sc_error(card->ctx, "Unhandled apdu case.");
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r = SC_ERROR_INVALID_DATA;
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goto err;
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}
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tmp = BUF_MEM_new();
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if (!tmp) {
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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r = sc_asn1_encode(card->ctx, sm_capdu, (u8 **) &tmp->data, &tmp->length);
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if (r < 0) {
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goto err;
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}
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oldlen = mac_data->length;
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BUF_MEM_grow(mac_data, oldlen + tmp->length);
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memcpy(mac_data->data + oldlen, tmp->data, tmp->length);
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BUF_MEM_free(tmp);
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tmp = add_padding(ctx, mac_data->data, mac_data->length);
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mac = BUF_MEM_new();
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if (!mac) {
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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r = ctx->authenticate(card, ctx, (u8 *) tmp->data, tmp->length,
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(u8 **) &mac->data);
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if (r < 0) {
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sc_error(card->ctx, "Could not get authentication code");
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goto err;
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}
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mac->length = r;
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bin_log(card->ctx, "mac", (u8 *)mac->data, mac->length);
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sc_format_asn1_entry(sm_capdu + 2, mac->data, &mac->length,
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SC_ASN1_PRESENT);
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/* format SM apdu */
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r = sc_asn1_encode(card->ctx, sm_capdu, (u8 **) &sm_data, &sm_data_len);
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if (r < 0)
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goto err;
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sm_apdu->data = sm_data;
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sm_apdu->datalen = sm_data_len;
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sm_apdu->lc = sm_apdu->datalen;
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sm_apdu->le = 0;
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sm_apdu->cse = SC_APDU_CASE_4;
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bin_log(card->ctx, "sm apdu data", sm_apdu->data, sm_apdu->datalen);
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printf("%s:%d\n", __FILE__, __LINE__);
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err:
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if (fdata) {
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BUF_MEM_free(fdata);
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}
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if (tmp) {
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BUF_MEM_free(tmp);
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}
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if (mac_data) {
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BUF_MEM_free(mac_data);
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}
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if (mac) {
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BUF_MEM_free(mac);
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}
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if (le) {
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free(le);
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}
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SC_FUNC_RETURN(card->ctx, SC_LOG_TYPE_ERROR, r);
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}
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int sm_decrypt(const struct sm_ctx *ctx, sc_card_t *card,
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const sc_apdu_t *sm_apdu, sc_apdu_t *apdu)
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{
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int r;
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struct sc_asn1_entry sm_rapdu[4];
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struct sc_asn1_entry my_sm_rapdu[4];
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u8 sw[2], mac[256], fdata[1024];
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size_t sw_len = sizeof sw, mac_len = sizeof mac, fdata_len = sizeof fdata,
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buf_len;
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const u8 *buf;
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u8 *data;
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BUF_MEM *mac_data = NULL, *tmp = NULL, *my_mac = NULL;
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sc_copy_asn1_entry(c_sm_rapdu, sm_rapdu);
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sc_format_asn1_entry(sm_rapdu + 0, fdata, &fdata_len, 0);
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sc_format_asn1_entry(sm_rapdu + 1, sw, &sw_len, 0);
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sc_format_asn1_entry(sm_rapdu + 2, mac, &mac_len, 0);
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r = sc_asn1_decode(card->ctx, sm_rapdu, apdu->resp, apdu->resplen,
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&buf, &buf_len);
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if (r < 0)
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goto err;
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if (buf_len > 0) {
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r = SC_ERROR_UNKNOWN_DATA_RECEIVED;
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goto err;
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}
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if (sm_rapdu[2].flags & SC_ASN1_PRESENT) {
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sc_copy_asn1_entry(sm_rapdu, my_sm_rapdu);
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tmp = BUF_MEM_new();
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if (!tmp) {
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r = SC_ERROR_OUT_OF_MEMORY;
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goto err;
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}
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sc_format_asn1_entry(my_sm_rapdu + 2, NULL, NULL, 0);
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r = sc_asn1_encode(card->ctx, my_sm_rapdu, (u8 **) &tmp->data, &tmp->length);
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if (r < 0)
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goto err;
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mac_data = add_padding(ctx, tmp->data, tmp->length);
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if (!mac_data) {
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r = SC_ERROR_INTERNAL;
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goto err;
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}
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r = ctx->verify_authentication(card, ctx, mac, mac_len,
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(u8 *) mac_data->data, mac_data->length);
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if (r < 0)
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goto err;
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}
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if (sm_rapdu[0].flags & SC_ASN1_PRESENT) {
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if (ctx->padding_indicator != fdata[0]) {
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r = SC_ERROR_UNKNOWN_DATA_RECEIVED;
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goto err;
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}
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r = ctx->decrypt(card, ctx, fdata + 1, fdata_len - 1, &data);
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if (r < 0)
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goto err;
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buf_len = r;
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r = no_padding(ctx->padding_indicator, data, buf_len);
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if (r < 0)
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goto err;
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memcpy(apdu, sm_apdu, sizeof *apdu);
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apdu->resp = data;
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apdu->resplen = r;
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} else {
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apdu->resplen = r;
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}
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r = SC_SUCCESS;
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err:
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if (tmp) {
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BUF_MEM_free(tmp);
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}
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if (mac_data) {
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BUF_MEM_free(mac_data);
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}
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if (my_mac) {
|
|
BUF_MEM_free(my_mac);
|
|
}
|
|
|
|
SC_FUNC_RETURN(card->ctx, SC_LOG_TYPE_ERROR, r);
|
|
}
|