| |
| |
| |
| |
| |
| |
| |
| |
| |
| |
| |
| |
| |
| |
|
|
| #ifndef AGG_BASICS_INCLUDED |
| #define AGG_BASICS_INCLUDED |
|
|
| #include <math.h> |
| #include "agg_config.h" |
|
|
| |
| #ifdef AGG_CUSTOM_ALLOCATOR |
| #include "agg_allocator.h" |
| #else |
| namespace agg |
| { |
| |
| |
| |
| |
| |
| |
| |
| |
| template<class T> struct pod_allocator |
| { |
| static T* allocate(unsigned num) { return new T [num]; } |
| static void deallocate(T* ptr, unsigned) { delete [] ptr; } |
| }; |
|
|
| |
| |
| |
| |
| |
| |
| |
| |
| template<class T> struct obj_allocator |
| { |
| static T* allocate() { return new T; } |
| static void deallocate(T* ptr) { delete ptr; } |
| }; |
| } |
| #endif |
|
|
|
|
| |
| |
| |
| |
| |
| |
| #ifndef AGG_INT8 |
| #define AGG_INT8 signed char |
| #endif |
|
|
| #ifndef AGG_INT8U |
| #define AGG_INT8U unsigned char |
| #endif |
|
|
| #ifndef AGG_INT16 |
| #define AGG_INT16 short |
| #endif |
|
|
| #ifndef AGG_INT16U |
| #define AGG_INT16U unsigned short |
| #endif |
|
|
| #ifndef AGG_INT32 |
| #define AGG_INT32 int |
| #endif |
|
|
| #ifndef AGG_INT32U |
| #define AGG_INT32U unsigned |
| #endif |
|
|
| #ifndef AGG_INT64 |
| #if defined(_MSC_VER) || defined(__BORLANDC__) |
| #define AGG_INT64 signed __int64 |
| #else |
| #define AGG_INT64 signed long long |
| #endif |
| #endif |
|
|
| #ifndef AGG_INT64U |
| #if defined(_MSC_VER) || defined(__BORLANDC__) |
| #define AGG_INT64U unsigned __int64 |
| #else |
| #define AGG_INT64U unsigned long long |
| #endif |
| #endif |
|
|
| |
| #if defined(_MSC_VER) |
| #pragma warning(disable:4786) |
| #endif |
|
|
| #if defined(_MSC_VER) |
| #define AGG_INLINE __forceinline |
| #else |
| #define AGG_INLINE inline |
| #endif |
|
|
| namespace agg |
| { |
| |
| typedef AGG_INT8 int8; |
| typedef AGG_INT8U int8u; |
| typedef AGG_INT16 int16; |
| typedef AGG_INT16U int16u; |
| typedef AGG_INT32 int32; |
| typedef AGG_INT32U int32u; |
| typedef AGG_INT64 int64; |
| typedef AGG_INT64U int64u; |
|
|
| #if defined(AGG_FISTP) |
| #pragma warning(push) |
| #pragma warning(disable : 4035) |
| AGG_INLINE int iround(double v) |
| { |
| int t; |
| __asm fld qword ptr [v] |
| __asm fistp dword ptr [t] |
| __asm mov eax, dword ptr [t] |
| } |
| AGG_INLINE unsigned uround(double v) |
| { |
| unsigned t; |
| __asm fld qword ptr [v] |
| __asm fistp dword ptr [t] |
| __asm mov eax, dword ptr [t] |
| } |
| #pragma warning(pop) |
| AGG_INLINE int ifloor(double v) |
| { |
| return int(floor(v)); |
| } |
| AGG_INLINE unsigned ufloor(double v) |
| { |
| return unsigned(floor(v)); |
| } |
| AGG_INLINE int iceil(double v) |
| { |
| return int(ceil(v)); |
| } |
| AGG_INLINE unsigned uceil(double v) |
| { |
| return unsigned(ceil(v)); |
| } |
| #elif defined(AGG_QIFIST) |
| AGG_INLINE int iround(double v) |
| { |
| return int(v); |
| } |
| AGG_INLINE int uround(double v) |
| { |
| return unsigned(v); |
| } |
| AGG_INLINE int ifloor(double v) |
| { |
| return int(floor(v)); |
| } |
| AGG_INLINE unsigned ufloor(double v) |
| { |
| return unsigned(floor(v)); |
| } |
| AGG_INLINE int iceil(double v) |
| { |
| return int(ceil(v)); |
| } |
| AGG_INLINE unsigned uceil(double v) |
| { |
| return unsigned(ceil(v)); |
| } |
| #else |
| AGG_INLINE int iround(double v) |
| { |
| return int((v < 0.0) ? v - 0.5 : v + 0.5); |
| } |
| AGG_INLINE int uround(double v) |
| { |
| return unsigned(v + 0.5); |
| } |
| AGG_INLINE int ifloor(double v) |
| { |
| int i = int(v); |
| return i - (i > v); |
| } |
| AGG_INLINE unsigned ufloor(double v) |
| { |
| return unsigned(v); |
| } |
| AGG_INLINE int iceil(double v) |
| { |
| return int(ceil(v)); |
| } |
| AGG_INLINE unsigned uceil(double v) |
| { |
| return unsigned(ceil(v)); |
| } |
| #endif |
|
|
| |
| template<int Limit> struct saturation |
| { |
| AGG_INLINE static int iround(double v) |
| { |
| if(v < double(-Limit)) return -Limit; |
| if(v > double( Limit)) return Limit; |
| return agg::iround(v); |
| } |
| }; |
|
|
| |
| template<unsigned Shift> struct mul_one |
| { |
| AGG_INLINE static unsigned mul(unsigned a, unsigned b) |
| { |
| unsigned q = a * b + (1 << (Shift-1)); |
| return (q + (q >> Shift)) >> Shift; |
| } |
| }; |
|
|
| |
| typedef unsigned char cover_type; |
| enum cover_scale_e |
| { |
| cover_shift = 8, |
| cover_size = 1 << cover_shift, |
| cover_mask = cover_size - 1, |
| cover_none = 0, |
| cover_full = cover_mask |
| }; |
|
|
| |
| |
| |
| |
| |
| |
| enum poly_subpixel_scale_e |
| { |
| poly_subpixel_shift = 8, |
| poly_subpixel_scale = 1<<poly_subpixel_shift, |
| poly_subpixel_mask = poly_subpixel_scale-1 |
| }; |
|
|
| |
| enum filling_rule_e |
| { |
| fill_non_zero, |
| fill_even_odd |
| }; |
|
|
| |
| const double pi = 3.14159265358979323846; |
|
|
| |
| inline double deg2rad(double deg) |
| { |
| return deg * pi / 180.0; |
| } |
|
|
| |
| inline double rad2deg(double rad) |
| { |
| return rad * 180.0 / pi; |
| } |
| |
| |
| template<class T> struct rect_base |
| { |
| typedef T value_type; |
| typedef rect_base<T> self_type; |
| T x1, y1, x2, y2; |
|
|
| rect_base() {} |
| rect_base(T x1_, T y1_, T x2_, T y2_) : |
| x1(x1_), y1(y1_), x2(x2_), y2(y2_) {} |
|
|
| void init(T x1_, T y1_, T x2_, T y2_) |
| { |
| x1 = x1_; y1 = y1_; x2 = x2_; y2 = y2_; |
| } |
|
|
| const self_type& normalize() |
| { |
| T t; |
| if(x1 > x2) { t = x1; x1 = x2; x2 = t; } |
| if(y1 > y2) { t = y1; y1 = y2; y2 = t; } |
| return *this; |
| } |
|
|
| bool clip(const self_type& r) |
| { |
| if(x2 > r.x2) x2 = r.x2; |
| if(y2 > r.y2) y2 = r.y2; |
| if(x1 < r.x1) x1 = r.x1; |
| if(y1 < r.y1) y1 = r.y1; |
| return x1 <= x2 && y1 <= y2; |
| } |
|
|
| bool is_valid() const |
| { |
| return x1 <= x2 && y1 <= y2; |
| } |
|
|
| bool hit_test(T x, T y) const |
| { |
| return (x >= x1 && x <= x2 && y >= y1 && y <= y2); |
| } |
| |
| bool overlaps(const self_type& r) const |
| { |
| return !(r.x1 > x2 || r.x2 < x1 |
| || r.y1 > y2 || r.y2 < y1); |
| } |
| }; |
|
|
| |
| template<class Rect> |
| inline Rect intersect_rectangles(const Rect& r1, const Rect& r2) |
| { |
| Rect r = r1; |
|
|
| |
| |
| |
| |
| |
| if(r.x2 > r2.x2) r.x2 = r2.x2; |
| if(r.y2 > r2.y2) r.y2 = r2.y2; |
| if(r.x1 < r2.x1) r.x1 = r2.x1; |
| if(r.y1 < r2.y1) r.y1 = r2.y1; |
| return r; |
| } |
|
|
|
|
| |
| template<class Rect> |
| inline Rect unite_rectangles(const Rect& r1, const Rect& r2) |
| { |
| Rect r = r1; |
| if(r.x2 < r2.x2) r.x2 = r2.x2; |
| if(r.y2 < r2.y2) r.y2 = r2.y2; |
| if(r.x1 > r2.x1) r.x1 = r2.x1; |
| if(r.y1 > r2.y1) r.y1 = r2.y1; |
| return r; |
| } |
|
|
| typedef rect_base<int> rect_i; |
| typedef rect_base<float> rect_f; |
| typedef rect_base<double> rect_d; |
|
|
| |
| enum path_commands_e |
| { |
| path_cmd_stop = 0, |
| path_cmd_move_to = 1, |
| path_cmd_line_to = 2, |
| path_cmd_curve3 = 3, |
| path_cmd_curve4 = 4, |
| path_cmd_curveN = 5, |
| path_cmd_catrom = 6, |
| path_cmd_ubspline = 7, |
| path_cmd_end_poly = 0x0F, |
| path_cmd_mask = 0x0F |
| }; |
|
|
| |
| enum path_flags_e |
| { |
| path_flags_none = 0, |
| path_flags_ccw = 0x10, |
| path_flags_cw = 0x20, |
| path_flags_close = 0x40, |
| path_flags_mask = 0xF0 |
| }; |
|
|
| |
| inline bool is_vertex(unsigned c) |
| { |
| return c >= path_cmd_move_to && c < path_cmd_end_poly; |
| } |
|
|
| |
| inline bool is_drawing(unsigned c) |
| { |
| return c >= path_cmd_line_to && c < path_cmd_end_poly; |
| } |
|
|
| |
| inline bool is_stop(unsigned c) |
| { |
| return c == path_cmd_stop; |
| } |
|
|
| |
| inline bool is_move_to(unsigned c) |
| { |
| return c == path_cmd_move_to; |
| } |
|
|
| |
| inline bool is_line_to(unsigned c) |
| { |
| return c == path_cmd_line_to; |
| } |
|
|
| |
| inline bool is_curve(unsigned c) |
| { |
| return c == path_cmd_curve3 || c == path_cmd_curve4; |
| } |
|
|
| |
| inline bool is_curve3(unsigned c) |
| { |
| return c == path_cmd_curve3; |
| } |
|
|
| |
| inline bool is_curve4(unsigned c) |
| { |
| return c == path_cmd_curve4; |
| } |
|
|
| |
| inline bool is_end_poly(unsigned c) |
| { |
| return (c & path_cmd_mask) == path_cmd_end_poly; |
| } |
|
|
| |
| inline bool is_close(unsigned c) |
| { |
| return (c & ~(path_flags_cw | path_flags_ccw)) == |
| (path_cmd_end_poly | path_flags_close); |
| } |
|
|
| |
| inline bool is_next_poly(unsigned c) |
| { |
| return is_stop(c) || is_move_to(c) || is_end_poly(c); |
| } |
|
|
| |
| inline bool is_cw(unsigned c) |
| { |
| return (c & path_flags_cw) != 0; |
| } |
|
|
| |
| inline bool is_ccw(unsigned c) |
| { |
| return (c & path_flags_ccw) != 0; |
| } |
|
|
| |
| inline bool is_oriented(unsigned c) |
| { |
| return (c & (path_flags_cw | path_flags_ccw)) != 0; |
| } |
|
|
| |
| inline bool is_closed(unsigned c) |
| { |
| return (c & path_flags_close) != 0; |
| } |
|
|
| |
| inline unsigned get_close_flag(unsigned c) |
| { |
| return c & path_flags_close; |
| } |
|
|
| |
| inline unsigned clear_orientation(unsigned c) |
| { |
| return c & ~(path_flags_cw | path_flags_ccw); |
| } |
|
|
| |
| inline unsigned get_orientation(unsigned c) |
| { |
| return c & (path_flags_cw | path_flags_ccw); |
| } |
|
|
| |
| inline unsigned set_orientation(unsigned c, unsigned o) |
| { |
| return clear_orientation(c) | o; |
| } |
|
|
| |
| template<class T> struct point_base |
| { |
| typedef T value_type; |
| T x,y; |
| point_base() {} |
| point_base(T x_, T y_) : x(x_), y(y_) {} |
| }; |
| typedef point_base<int> point_i; |
| typedef point_base<float> point_f; |
| typedef point_base<double> point_d; |
|
|
| |
| template<class T> struct vertex_base |
| { |
| typedef T value_type; |
| T x,y; |
| unsigned cmd; |
| vertex_base() {} |
| vertex_base(T x_, T y_, unsigned cmd_) : x(x_), y(y_), cmd(cmd_) {} |
| }; |
| typedef vertex_base<int> vertex_i; |
| typedef vertex_base<float> vertex_f; |
| typedef vertex_base<double> vertex_d; |
|
|
| |
| template<class T> struct row_info |
| { |
| int x1, x2; |
| T* ptr; |
| row_info() {} |
| row_info(int x1_, int x2_, T* ptr_) : x1(x1_), x2(x2_), ptr(ptr_) {} |
| }; |
|
|
| |
| template<class T> struct const_row_info |
| { |
| int x1, x2; |
| const T* ptr; |
| const_row_info() {} |
| const_row_info(int x1_, int x2_, const T* ptr_) : |
| x1(x1_), x2(x2_), ptr(ptr_) {} |
| }; |
|
|
| |
| template<class T> inline bool is_equal_eps(T v1, T v2, T epsilon) |
| { |
| return fabs(v1 - v2) <= double(epsilon); |
| } |
| } |
|
|
|
|
| #endif |
|
|
|
|