#ifndef HB_OT_POST_TABLE_HH
#define HB_OT_POST_TABLE_HH
#include "hb-open-type.hh"
#include "hb-ot-var-mvar-table.hh"
#define HB_STRING_ARRAY_NAME format1_names
#define HB_STRING_ARRAY_LIST "hb-ot-post-macroman.hh"
#include "hb-string-array.hh"
#undef HB_STRING_ARRAY_LIST
#undef HB_STRING_ARRAY_NAME
#define HB_OT_TAG_post HB_TAG('p','o','s','t')
namespace OT {
struct postV2Tail
{
friend struct post;
bool sanitize (hb_sanitize_context_t *c) const
{
TRACE_SANITIZE (this);
return_trace (glyphNameIndex.sanitize (c));
}
template<typename Iterator>
bool serialize (hb_serialize_context_t *c,
Iterator it,
const void* _post) const;
bool subset (hb_subset_context_t *c) const;
protected:
Array16Of<HBUINT16> glyphNameIndex;
public:
DEFINE_SIZE_ARRAY (2, glyphNameIndex);
};
struct post
{
static constexpr hb_tag_t tableTag = HB_OT_TAG_post;
bool serialize (hb_serialize_context_t *c, bool glyph_names) const
{
TRACE_SERIALIZE (this);
post *post_prime = c->allocate_min<post> ();
if (unlikely (!post_prime)) return_trace (false);
hb_memcpy (post_prime, this, post::min_size);
if (!glyph_names)
return_trace (c->check_assign (post_prime->version.major, 3,
HB_SERIALIZE_ERROR_INT_OVERFLOW));
return_trace (true);
}
bool subset (hb_subset_context_t *c) const
{
TRACE_SUBSET (this);
auto *post_prime = c->serializer->start_embed<post> ();
bool glyph_names = c->plan->flags & HB_SUBSET_FLAGS_GLYPH_NAMES;
if (!serialize (c->serializer, glyph_names))
return_trace (false);
#ifndef HB_NO_VAR
if (c->plan->normalized_coords)
{
auto &MVAR = *c->plan->source->table.MVAR;
auto *table = post_prime;
HB_ADD_MVAR_VAR (HB_OT_METRICS_TAG_UNDERLINE_SIZE, underlineThickness);
HB_ADD_MVAR_VAR (HB_OT_METRICS_TAG_UNDERLINE_OFFSET, underlinePosition);
}
#endif
Triple *axis_range;
if (c->plan->user_axes_location.has (HB_TAG ('s','l','n','t'), &axis_range))
{
float italic_angle = hb_max (-90.f, hb_min (axis_range->middle, 90.f));
if (post_prime->italicAngle.to_float () != italic_angle)
post_prime->italicAngle.set_float (italic_angle);
}
if (glyph_names && version.major == 2)
{
hb_barrier ();
return_trace (v2X.subset (c));
}
return_trace (true);
}
struct accelerator_t
{
friend struct postV2Tail;
accelerator_t (hb_face_t *face)
{
table = hb_sanitize_context_t ().reference_table<post> (face);
unsigned int table_length = table.get_length ();
version = table->version.to_int ();
if (version != 0x00020000) return;
hb_barrier ();
const postV2Tail &v2 = table->v2X;
glyphNameIndex = &v2.glyphNameIndex;
pool = &StructAfter<uint8_t> (v2.glyphNameIndex);
const uint8_t *end = (const uint8_t *) (const void *) table + table_length;
index_to_offset.alloc (hb_min (face->get_num_glyphs (), table_length / 8));
for (const uint8_t *data = pool;
index_to_offset.length < 65535 && data < end && data + *data < end;
data += 1 + *data)
index_to_offset.push (data - pool);
}
~accelerator_t ()
{
hb_free (gids_sorted_by_name.get_acquire ());
table.destroy ();
}
bool get_glyph_name (hb_codepoint_t glyph,
char *buf, unsigned int buf_len) const
{
hb_bytes_t s = find_glyph_name (glyph);
if (!s.length) return false;
if (!buf_len) return true;
unsigned int len = hb_min (buf_len - 1, s.length);
strncpy (buf, s.arrayZ, len);
buf[len] = '\0';
return true;
}
bool get_glyph_from_name (const char *name, int len,
hb_codepoint_t *glyph) const
{
unsigned int count = get_glyph_count ();
if (unlikely (!count)) return false;
if (len < 0) len = strlen (name);
if (unlikely (!len)) return false;
retry:
uint16_t *gids = gids_sorted_by_name.get_acquire ();
if (unlikely (!gids))
{
gids = (uint16_t *) hb_malloc (count * sizeof (gids[0]));
if (unlikely (!gids))
return false;
for (unsigned int i = 0; i < count; i++)
gids[i] = i;
hb_qsort (gids, count, sizeof (gids[0]), cmp_gids, (void *) this);
if (unlikely (!gids_sorted_by_name.cmpexch (nullptr, gids)))
{
hb_free (gids);
goto retry;
}
}
hb_bytes_t st (name, len);
auto* gid = hb_bsearch (st, gids, count, sizeof (gids[0]), cmp_key, (void *) this);
if (gid)
{
*glyph = *gid;
return true;
}
return false;
}
hb_blob_ptr_t<post> table;
protected:
unsigned int get_glyph_count () const
{
if (version == 0x00010000)
{
hb_barrier ();
return format1_names_length;
}
if (version == 0x00020000)
{
hb_barrier ();
return glyphNameIndex->len;
}
return 0;
}
static int cmp_gids (const void *pa, const void *pb, void *arg)
{
const accelerator_t *thiz = (const accelerator_t *) arg;
uint16_t a = * (const uint16_t *) pa;
uint16_t b = * (const uint16_t *) pb;
return thiz->find_glyph_name (b).cmp (thiz->find_glyph_name (a));
}
static int cmp_key (const void *pk, const void *po, void *arg)
{
const accelerator_t *thiz = (const accelerator_t *) arg;
const hb_bytes_t *key = (const hb_bytes_t *) pk;
uint16_t o = * (const uint16_t *) po;
return thiz->find_glyph_name (o).cmp (*key);
}
hb_bytes_t find_glyph_name (hb_codepoint_t glyph) const
{
if (version == 0x00010000)
{
hb_barrier ();
if (glyph >= format1_names_length)
return hb_bytes_t ();
return format1_names (glyph);
}
if (version != 0x00020000)
return hb_bytes_t ();
hb_barrier ();
if (glyph >= glyphNameIndex->len)
return hb_bytes_t ();
unsigned int index = glyphNameIndex->arrayZ[glyph];
if (index < format1_names_length)
return format1_names (index);
index -= format1_names_length;
if (index >= index_to_offset.length)
return hb_bytes_t ();
unsigned int offset = index_to_offset[index];
const uint8_t *data = pool + offset;
unsigned int name_length = *data;
data++;
return hb_bytes_t ((const char *) data, name_length);
}
private:
uint32_t version;
const Array16Of<HBUINT16> *glyphNameIndex = nullptr;
hb_vector_t<uint32_t> index_to_offset;
const uint8_t *pool = nullptr;
hb_atomic_ptr_t<uint16_t *> gids_sorted_by_name;
};
bool has_data () const { return version.to_int (); }
bool sanitize (hb_sanitize_context_t *c) const
{
TRACE_SANITIZE (this);
return_trace (c->check_struct (this) &&
hb_barrier () &&
(version.to_int () == 0x00010000 ||
(version.to_int () == 0x00020000 && v2X.sanitize (c)) ||
version.to_int () == 0x00030000));
}
public:
FixedVersion<>version;
F16DOT16 italicAngle;
FWORD underlinePosition;
FWORD underlineThickness;
HBUINT32 isFixedPitch;
HBUINT32 minMemType42;
HBUINT32 maxMemType42;
HBUINT32 minMemType1;
HBUINT32 maxMemType1;
postV2Tail v2X;
DEFINE_SIZE_MIN (32);
};
struct post_accelerator_t : post::accelerator_t {
post_accelerator_t (hb_face_t *face) : post::accelerator_t (face) {}
};
}
#endif