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45ceef14f9
Instead of manually encoding controls, use an actual asn1 compiler. The file asn1/asn1c/ipa.asn1 will contain ipa modules. The generated code is committed to the tree and built into a static library that is linked to the code that uses it. The first module implements the GetKeytabControl control. Related: https://fedorahosted.org/freeipa/ticket/4718 https://fedorahosted.org/freeipa/ticket/4728 Reviewed-By: Alexander Bokovoy <abokovoy@redhat.com> Reviewed-By: Nathaniel McCallum <npmccallum@redhat.com>
319 lines
7.1 KiB
C
319 lines
7.1 KiB
C
/*
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* Copyright (c) 2005, 2006 Lev Walkin <vlm@lionet.info>. All rights reserved.
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* Redistribution and modifications are permitted subject to BSD license.
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*/
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#include <asn_system.h>
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#include <asn_internal.h>
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#include <per_support.h>
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/*
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* Extract a small number of bits (<= 31) from the specified PER data pointer.
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*/
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int32_t
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per_get_few_bits(asn_per_data_t *pd, int nbits) {
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size_t off; /* Next after last bit offset */
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uint32_t accum;
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const uint8_t *buf;
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if(nbits < 0 || pd->nboff + nbits > pd->nbits)
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return -1;
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ASN_DEBUG("[PER get %d bits from %p+%d bits]",
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nbits, pd->buffer, pd->nboff);
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/*
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* Normalize position indicator.
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*/
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if(pd->nboff >= 8) {
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pd->buffer += (pd->nboff >> 3);
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pd->nbits -= (pd->nboff & ~0x07);
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pd->nboff &= 0x07;
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}
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off = (pd->nboff += nbits);
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buf = pd->buffer;
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/*
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* Extract specified number of bits.
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*/
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if(off <= 8)
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accum = nbits ? (buf[0]) >> (8 - off) : 0;
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else if(off <= 16)
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accum = ((buf[0] << 8) + buf[1]) >> (16 - off);
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else if(off <= 24)
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accum = ((buf[0] << 16) + (buf[1] << 8) + buf[2]) >> (24 - off);
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else if(off <= 31)
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accum = ((buf[0] << 24) + (buf[1] << 16)
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+ (buf[2] << 8) + (buf[3])) >> (32 - off);
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else if(nbits <= 31) {
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asn_per_data_t tpd = *pd;
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/* Here are we with our 31-bits limit plus 1..7 bits offset. */
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tpd.nboff -= nbits;
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accum = per_get_few_bits(&tpd, nbits - 24) << 24;
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accum |= per_get_few_bits(&tpd, 24);
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} else {
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pd->nboff -= nbits; /* Oops, revert back */
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return -1;
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}
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return (accum & (((uint32_t)1 << nbits) - 1));
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}
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/*
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* Extract a large number of bits from the specified PER data pointer.
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*/
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int
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per_get_many_bits(asn_per_data_t *pd, uint8_t *dst, int alright, int nbits) {
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int32_t value;
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if(alright && (nbits & 7)) {
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/* Perform right alignment of a first few bits */
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value = per_get_few_bits(pd, nbits & 0x07);
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if(value < 0) return -1;
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*dst++ = value; /* value is already right-aligned */
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nbits &= ~7;
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}
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while(nbits) {
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if(nbits >= 24) {
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value = per_get_few_bits(pd, 24);
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if(value < 0) return -1;
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*(dst++) = value >> 16;
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*(dst++) = value >> 8;
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*(dst++) = value;
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nbits -= 24;
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} else {
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value = per_get_few_bits(pd, nbits);
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if(value < 0) return -1;
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if(nbits & 7) { /* implies left alignment */
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value <<= 8 - (nbits & 7),
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nbits += 8 - (nbits & 7);
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if(nbits > 24)
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*dst++ = value >> 24;
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}
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if(nbits > 16)
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*dst++ = value >> 16;
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if(nbits > 8)
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*dst++ = value >> 8;
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*dst++ = value;
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break;
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}
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}
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return 0;
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}
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/*
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* Get the length "n" from the stream.
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*/
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ssize_t
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uper_get_length(asn_per_data_t *pd, int ebits, int *repeat) {
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ssize_t value;
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*repeat = 0;
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if(ebits >= 0) return per_get_few_bits(pd, ebits);
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value = per_get_few_bits(pd, 8);
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if(value < 0) return -1;
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if((value & 128) == 0) /* #10.9.3.6 */
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return (value & 0x7F);
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if((value & 64) == 0) { /* #10.9.3.7 */
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value = ((value & 63) << 8) | per_get_few_bits(pd, 8);
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if(value < 0) return -1;
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return value;
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}
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value &= 63; /* this is "m" from X.691, #10.9.3.8 */
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if(value < 1 || value > 4)
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return -1;
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*repeat = 1;
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return (16384 * value);
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}
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/*
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* Get the normally small non-negative whole number.
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* X.691, #10.6
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*/
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ssize_t
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uper_get_nsnnwn(asn_per_data_t *pd) {
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ssize_t value;
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value = per_get_few_bits(pd, 7);
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if(value & 64) { /* implicit (value < 0) */
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value &= 63;
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value <<= 2;
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value |= per_get_few_bits(pd, 2);
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if(value & 128) /* implicit (value < 0) */
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return -1;
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if(value == 0)
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return 0;
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if(value >= 3)
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return -1;
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value = per_get_few_bits(pd, 8 * value);
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return value;
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}
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return value;
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}
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/*
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* Put the normally small non-negative whole number.
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* X.691, #10.6
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*/
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int
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uper_put_nsnnwn(asn_per_outp_t *po, int n) {
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int bytes;
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if(n <= 63) {
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if(n < 0) return -1;
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return per_put_few_bits(po, n, 7);
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}
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if(n < 256)
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bytes = 1;
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else if(n < 65536)
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bytes = 2;
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else if(n < 256 * 65536)
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bytes = 3;
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else
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return -1; /* This is not a "normally small" value */
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if(per_put_few_bits(po, bytes, 8))
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return -1;
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return per_put_few_bits(po, n, 8 * bytes);
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}
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/*
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* Put a small number of bits (<= 31).
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*/
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int
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per_put_few_bits(asn_per_outp_t *po, uint32_t bits, int obits) {
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size_t off; /* Next after last bit offset */
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size_t omsk; /* Existing last byte meaningful bits mask */
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uint8_t *buf;
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if(obits <= 0 || obits >= 32) return obits ? -1 : 0;
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ASN_DEBUG("[PER put %d bits to %p+%d bits]",
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obits, po->buffer, po->nboff);
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/*
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* Normalize position indicator.
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*/
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if(po->nboff >= 8) {
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po->buffer += (po->nboff >> 3);
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po->nbits -= (po->nboff & ~0x07);
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po->nboff &= 0x07;
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}
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/*
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* Flush whole-bytes output, if necessary.
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*/
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if(po->nboff + obits > po->nbits) {
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int complete_bytes = (po->buffer - po->tmpspace);
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if(po->outper(po->buffer, complete_bytes, po->op_key) < 0)
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return -1;
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if(po->nboff)
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po->tmpspace[0] = po->buffer[0];
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po->buffer = po->tmpspace;
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po->nbits = 8 * sizeof(po->tmpspace);
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po->flushed_bytes += complete_bytes;
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}
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/*
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* Now, due to sizeof(tmpspace), we are guaranteed large enough space.
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*/
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buf = po->buffer;
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omsk = ~((1 << (8 - po->nboff)) - 1);
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off = (po->nboff += obits);
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/* Clear data of debris before meaningful bits */
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bits &= (((uint32_t)1 << obits) - 1);
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ASN_DEBUG("[PER out %d %u/%x (t=%d,o=%d) %x&%x=%x]", obits, bits, bits,
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po->nboff - obits, off, buf[0], omsk&0xff, buf[0] & omsk);
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if(off <= 8) /* Completely within 1 byte */
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bits <<= (8 - off),
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buf[0] = (buf[0] & omsk) | bits;
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else if(off <= 16)
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bits <<= (16 - off),
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buf[0] = (buf[0] & omsk) | (bits >> 8),
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buf[1] = bits;
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else if(off <= 24)
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bits <<= (24 - off),
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buf[0] = (buf[0] & omsk) | (bits >> 16),
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buf[1] = bits >> 8,
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buf[2] = bits;
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else if(off <= 31)
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bits <<= (32 - off),
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buf[0] = (buf[0] & omsk) | (bits >> 24),
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buf[1] = bits >> 16,
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buf[2] = bits >> 8,
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buf[3] = bits;
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else {
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ASN_DEBUG("->[PER out split %d]", obits);
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per_put_few_bits(po, bits >> 8, 24);
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per_put_few_bits(po, bits, obits - 24);
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ASN_DEBUG("<-[PER out split %d]", obits);
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}
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ASN_DEBUG("[PER out %u/%x => %02x buf+%d]",
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bits, bits, buf[0], po->buffer - po->tmpspace);
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return 0;
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}
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/*
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* Output a large number of bits.
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*/
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int
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per_put_many_bits(asn_per_outp_t *po, const uint8_t *src, int nbits) {
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while(nbits) {
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uint32_t value;
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if(nbits >= 24) {
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value = (src[0] << 16) | (src[1] << 8) | src[2];
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src += 3;
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nbits -= 24;
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if(per_put_few_bits(po, value, 24))
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return -1;
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} else {
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value = src[0];
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if(nbits > 8)
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value = (value << 8) | src[1];
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if(nbits > 16)
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value = (value << 8) | src[2];
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if(nbits & 0x07)
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value >>= (8 - (nbits & 0x07));
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if(per_put_few_bits(po, value, nbits))
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return -1;
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break;
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}
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}
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return 0;
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}
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/*
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* Put the length "n" (or part of it) into the stream.
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*/
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ssize_t
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uper_put_length(asn_per_outp_t *po, size_t length) {
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if(length <= 127) /* #10.9.3.6 */
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return per_put_few_bits(po, length, 8)
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? -1 : (ssize_t)length;
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else if(length < 16384) /* #10.9.3.7 */
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return per_put_few_bits(po, length|0x8000, 16)
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? -1 : (ssize_t)length;
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length >>= 14;
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if(length > 4) length = 4;
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return per_put_few_bits(po, 0xC0 | length, 8)
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? -1 : (ssize_t)(length << 14);
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}
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