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Comparing deliantra/server/include/util.h (file contents):
Revision 1.7 by root, Mon Sep 11 20:28:37 2006 UTC vs.
Revision 1.30 by root, Mon Jan 15 01:50:33 2007 UTC

5# define is_constant(c) __builtin_constant_p (c) 5# define is_constant(c) __builtin_constant_p (c)
6#else 6#else
7# define is_constant(c) 0 7# define is_constant(c) 0
8#endif 8#endif
9 9
10#include <cstddef>
11#include <cmath>
12#include <new>
13#include <vector>
14
15#include <glib.h>
16
17#include <shstr.h>
18#include <traits.h>
19
20// use a gcc extension for auto declarations until ISO C++ sanctifies them
21#define AUTODECL(var,expr) typeof(expr) var = (expr)
22
23// very ugly macro that basicaly declares and initialises a variable
24// that is in scope for the next statement only
25// works only for stuff that can be assigned 0 and converts to false
26// (note: works great for pointers)
27// most ugly macro I ever wrote
28#define declvar(type, name, value) if (type name = 0) { } else if (((name) = (value)), 1)
29
30// in range including end
31#define IN_RANGE_INC(val,beg,end) \
32 ((unsigned int)(val) - (unsigned int)(beg) <= (unsigned int)(end) - (unsigned int)(beg))
33
34// in range excluding end
35#define IN_RANGE_EXC(val,beg,end) \
36 ((unsigned int)(val) - (unsigned int)(beg) < (unsigned int)(end) - (unsigned int)(beg))
37
38// this is much faster than crossfires original algorithm
39// on modern cpus
40inline int
41isqrt (int n)
42{
43 return (int)sqrtf ((float)n);
44}
45
46// this is only twice as fast as naive sqrtf (dx*dy+dy*dy)
47#if 0
48// and has a max. error of 6 in the range -100..+100.
49#else
50// and has a max. error of 9 in the range -100..+100.
51#endif
52inline int
53idistance (int dx, int dy)
54{
55 unsigned int dx_ = abs (dx);
56 unsigned int dy_ = abs (dy);
57
58#if 0
59 return dx_ > dy_
60 ? (dx_ * 61685 + dy_ * 26870) >> 16
61 : (dy_ * 61685 + dx_ * 26870) >> 16;
62#else
63 return dx_ + dy_ - min (dx_, dy_) * 5 / 8;
64#endif
65}
66
67/*
68 * absdir(int): Returns a number between 1 and 8, which represent
69 * the "absolute" direction of a number (it actually takes care of
70 * "overflow" in previous calculations of a direction).
71 */
72inline int
73absdir (int d)
74{
75 return ((d - 1) & 7) + 1;
76}
77
10// makes dynamically allocated objects zero-initialised 78// makes dynamically allocated objects zero-initialised
11struct zero_initialised 79struct zero_initialised
12{ 80{
13 void *operator new (size_t s, void *); 81 void *operator new (size_t s, void *p)
82 {
83 memset (p, 0, s);
84 return p;
85 }
86
14 void *operator new (size_t s); 87 void *operator new (size_t s)
88 {
89 return g_slice_alloc0 (s);
90 }
91
15 void *operator new [] (size_t s); 92 void *operator new[] (size_t s)
93 {
94 return g_slice_alloc0 (s);
95 }
96
16 void operator delete (void *p, size_t s); 97 void operator delete (void *p, size_t s)
98 {
99 g_slice_free1 (s, p);
100 }
101
17 void operator delete [] (void *p, size_t s); 102 void operator delete[] (void *p, size_t s)
103 {
104 g_slice_free1 (s, p);
105 }
18}; 106};
19 107
20struct refcounted 108void *salloc_ (int n) throw (std::bad_alloc);
109void *salloc_ (int n, void *src) throw (std::bad_alloc);
110
111// strictly the same as g_slice_alloc, but never returns 0
112template<typename T>
113inline T *salloc (int n = 1) throw (std::bad_alloc) { return (T *)salloc_ (n * sizeof (T)); }
114
115// also copies src into the new area, like "memdup"
116// if src is 0, clears the memory
117template<typename T>
118inline T *salloc (int n, T *src) throw (std::bad_alloc) { return (T *)salloc_ (n * sizeof (T), (void *)src); }
119
120// clears the memory
121template<typename T>
122inline T *salloc0(int n = 1) throw (std::bad_alloc) { return (T *)salloc_ (n * sizeof (T), 0); }
123
124// for symmetry
125template<typename T>
126inline void sfree (T *ptr, int n = 1) throw ()
21{ 127{
22 mutable int refcnt; 128 g_slice_free1 (n * sizeof (T), (void *)ptr);
23 refcounted () : refcnt (0) { } 129}
24 void refcnt_inc () { ++refcnt; } 130
25 void refcnt_dec () { --refcnt; 131// a STL-compatible allocator that uses g_slice
26 if (refcnt < 0)abort();}//D 132// boy, this is verbose
133template<typename Tp>
134struct slice_allocator
135{
136 typedef size_t size_type;
137 typedef ptrdiff_t difference_type;
138 typedef Tp *pointer;
139 typedef const Tp *const_pointer;
140 typedef Tp &reference;
141 typedef const Tp &const_reference;
142 typedef Tp value_type;
143
144 template <class U>
145 struct rebind
146 {
147 typedef slice_allocator<U> other;
148 };
149
150 slice_allocator () throw () { }
151 slice_allocator (const slice_allocator &o) throw () { }
152 template<typename Tp2>
153 slice_allocator (const slice_allocator<Tp2> &) throw () { }
154
155 ~slice_allocator () { }
156
157 pointer address (reference x) const { return &x; }
158 const_pointer address (const_reference x) const { return &x; }
159
160 pointer allocate (size_type n, const_pointer = 0)
161 {
162 return salloc<Tp> (n);
163 }
164
165 void deallocate (pointer p, size_type n)
166 {
167 sfree<Tp> (p, n);
168 }
169
170 size_type max_size ()const throw ()
171 {
172 return size_t (-1) / sizeof (Tp);
173 }
174
175 void construct (pointer p, const Tp &val)
176 {
177 ::new (p) Tp (val);
178 }
179
180 void destroy (pointer p)
181 {
182 p->~Tp ();
183 }
27}; 184};
28 185
29template<class T> 186template<class T>
30struct refptr 187struct refptr
31{ 188{
54 T &operator * () const { return *p; } 211 T &operator * () const { return *p; }
55 T *operator ->() const { return p; } 212 T *operator ->() const { return p; }
56 213
57 operator T *() const { return p; } 214 operator T *() const { return p; }
58}; 215};
216
217typedef refptr<maptile> maptile_ptr;
218typedef refptr<object> object_ptr;
219typedef refptr<archetype> arch_ptr;
220typedef refptr<client> client_ptr;
221typedef refptr<player> player_ptr;
59 222
60struct str_hash 223struct str_hash
61{ 224{
62 std::size_t operator ()(const char *s) const 225 std::size_t operator ()(const char *s) const
63 { 226 {
89 { 252 {
90 return !strcmp (a, b); 253 return !strcmp (a, b);
91 } 254 }
92}; 255};
93 256
94#include <vector>
95
96template<class obj> 257template<class T>
97struct unordered_vector : std::vector<obj> 258struct unordered_vector : std::vector<T, slice_allocator<T> >
98{ 259{
99 typedef typename std::vector<obj>::iterator iterator; 260 typedef typename unordered_vector::iterator iterator;
100 261
101 void erase (unsigned int pos) 262 void erase (unsigned int pos)
102 { 263 {
103 if (pos < this->size () - 1) 264 if (pos < this->size () - 1)
104 (*this)[pos] = (*this)[this->size () - 1]; 265 (*this)[pos] = (*this)[this->size () - 1];
110 { 271 {
111 erase ((unsigned int )(i - this->begin ())); 272 erase ((unsigned int )(i - this->begin ()));
112 } 273 }
113}; 274};
114 275
276template<class T, int T::* index>
277struct object_vector : std::vector<T *, slice_allocator<T *> >
278{
279 void insert (T *obj)
280 {
281 assert (!(obj->*index));
282 push_back (obj);
283 obj->*index = this->size ();
284 }
285
286 void insert (T &obj)
287 {
288 insert (&obj);
289 }
290
291 void erase (T *obj)
292 {
293 assert (obj->*index);
294 int pos = obj->*index;
295 obj->*index = 0;
296
297 if (pos < this->size ())
298 {
299 (*this)[pos - 1] = (*this)[this->size () - 1];
300 (*this)[pos - 1]->*index = pos;
301 }
302
303 this->pop_back ();
304 }
305
306 void erase (T &obj)
307 {
308 errase (&obj);
309 }
310};
311
312template<typename T, typename U> static inline T min (T a, U b) { return a < (T)b ? a : (T)b; }
313template<typename T, typename U> static inline T max (T a, U b) { return a > (T)b ? a : (T)b; }
314template<typename T, typename U, typename V> static inline T clamp (T v, U a, V b) { return v < (T)a ? a : v >(T)b ? b : v; }
315
316template<typename T, typename U> static inline void swap (T& a, U& b) { T t=a; a=(T)b; b=(U)t; }
317
318// basically does what strncpy should do, but appends "..." to strings exceeding length
319void assign (char *dst, const char *src, int maxlen);
320
321// type-safe version of assign
322template<int N>
323inline void assign (char (&dst)[N], const char *src)
324{
325 assign ((char *)&dst, src, N);
326}
327
328typedef double tstamp;
329
330// return current time as timestampe
331tstamp now ();
332
333int similar_direction (int a, int b);
334
115#endif 335#endif
116 336

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