/src/Python-3.8.3/Python/hamt.c
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1  |  | #include "Python.h"  | 
2  |  |  | 
3  |  | #include "pycore_hamt.h"  | 
4  |  | #include "pycore_object.h"  | 
5  |  | #include "pycore_pystate.h"  | 
6  |  | #include "structmember.h"  | 
7  |  |  | 
8  |  | /*  | 
9  |  | This file provides an implementation of an immutable mapping using the  | 
10  |  | Hash Array Mapped Trie (or HAMT) datastructure.  | 
11  |  |  | 
12  |  | This design allows to have:  | 
13  |  |  | 
14  |  | 1. Efficient copy: immutable mappings can be copied by reference,  | 
15  |  |    making it an O(1) operation.  | 
16  |  |  | 
17  |  | 2. Efficient mutations: due to structural sharing, only a portion of  | 
18  |  |    the trie needs to be copied when the collection is mutated.  The  | 
19  |  |    cost of set/delete operations is O(log N).  | 
20  |  |  | 
21  |  | 3. Efficient lookups: O(log N).  | 
22  |  |  | 
23  |  | (where N is number of key/value items in the immutable mapping.)  | 
24  |  |  | 
25  |  |  | 
26  |  | HAMT  | 
27  |  | ====  | 
28  |  |  | 
29  |  | The core idea of HAMT is that the shape of the trie is encoded into the  | 
30  |  | hashes of keys.  | 
31  |  |  | 
32  |  | Say we want to store a K/V pair in our mapping.  First, we calculate the  | 
33  |  | hash of K, let's say it's 19830128, or in binary:  | 
34  |  |  | 
35  |  |     0b1001011101001010101110000 = 19830128  | 
36  |  |  | 
37  |  | Now let's partition this bit representation of the hash into blocks of  | 
38  |  | 5 bits each:  | 
39  |  |  | 
40  |  |     0b00_00000_10010_11101_00101_01011_10000 = 19830128  | 
41  |  |           (6)   (5)   (4)   (3)   (2)   (1)  | 
42  |  |  | 
43  |  | Each block of 5 bits represents a number between 0 and 31.  So if we have  | 
44  |  | a tree that consists of nodes, each of which is an array of 32 pointers,  | 
45  |  | those 5-bit blocks will encode a position on a single tree level.  | 
46  |  |  | 
47  |  | For example, storing the key K with hash 19830128, results in the following  | 
48  |  | tree structure:  | 
49  |  |  | 
50  |  |                      (array of 32 pointers)  | 
51  |  |                      +---+ -- +----+----+----+ -- +----+  | 
52  |  |   root node          | 0 | .. | 15 | 16 | 17 | .. | 31 |   0b10000 = 16 (1)  | 
53  |  |   (level 1)          +---+ -- +----+----+----+ -- +----+  | 
54  |  |                                       |  | 
55  |  |                      +---+ -- +----+----+----+ -- +----+  | 
56  |  |   a 2nd level node   | 0 | .. | 10 | 11 | 12 | .. | 31 |   0b01011 = 11 (2)  | 
57  |  |                      +---+ -- +----+----+----+ -- +----+  | 
58  |  |                                       |  | 
59  |  |                      +---+ -- +----+----+----+ -- +----+  | 
60  |  |   a 3rd level node   | 0 | .. | 04 | 05 | 06 | .. | 31 |   0b00101 = 5  (3)  | 
61  |  |                      +---+ -- +----+----+----+ -- +----+  | 
62  |  |                                       |  | 
63  |  |                      +---+ -- +----+----+----+----+  | 
64  |  |   a 4th level node   | 0 | .. | 04 | 29 | 30 | 31 |        0b11101 = 29 (4)  | 
65  |  |                      +---+ -- +----+----+----+----+  | 
66  |  |                                       |  | 
67  |  |                      +---+ -- +----+----+----+ -- +----+  | 
68  |  |   a 5th level node   | 0 | .. | 17 | 18 | 19 | .. | 31 |   0b10010 = 18 (5)  | 
69  |  |                      +---+ -- +----+----+----+ -- +----+  | 
70  |  |                                       |  | 
71  |  |                        +--------------+  | 
72  |  |                        |  | 
73  |  |                      +---+ -- +----+----+----+ -- +----+  | 
74  |  |   a 6th level node   | 0 | .. | 15 | 16 | 17 | .. | 31 |   0b00000 = 0  (6)  | 
75  |  |                      +---+ -- +----+----+----+ -- +----+  | 
76  |  |                        |  | 
77  |  |                        V -- our value (or collision)  | 
78  |  |  | 
79  |  | To rehash: for a K/V pair, the hash of K encodes where in the tree V will  | 
80  |  | be stored.  | 
81  |  |  | 
82  |  | To optimize memory footprint and handle hash collisions, our implementation  | 
83  |  | uses three different types of nodes:  | 
84  |  |  | 
85  |  |  * A Bitmap node;  | 
86  |  |  * An Array node;  | 
87  |  |  * A Collision node.  | 
88  |  |  | 
89  |  | Because we implement an immutable dictionary, our nodes are also  | 
90  |  | immutable.  Therefore, when we need to modify a node, we copy it, and  | 
91  |  | do that modification to the copy.  | 
92  |  |  | 
93  |  |  | 
94  |  | Array Nodes  | 
95  |  | -----------  | 
96  |  |  | 
97  |  | These nodes are very simple.  Essentially they are arrays of 32 pointers  | 
98  |  | we used to illustrate the high-level idea in the previous section.  | 
99  |  |  | 
100  |  | We use Array nodes only when we need to store more than 16 pointers  | 
101  |  | in a single node.  | 
102  |  |  | 
103  |  | Array nodes do not store key objects or value objects.  They are used  | 
104  |  | only as an indirection level - their pointers point to other nodes in  | 
105  |  | the tree.  | 
106  |  |  | 
107  |  |  | 
108  |  | Bitmap Node  | 
109  |  | -----------  | 
110  |  |  | 
111  |  | Allocating a new 32-pointers array for every node of our tree would be  | 
112  |  | very expensive.  Unless we store millions of keys, most of tree nodes would  | 
113  |  | be very sparse.  | 
114  |  |  | 
115  |  | When we have less than 16 elements in a node, we don't want to use the  | 
116  |  | Array node, that would mean that we waste a lot of memory.  Instead,  | 
117  |  | we can use bitmap compression and can have just as many pointers  | 
118  |  | as we need!  | 
119  |  |  | 
120  |  | Bitmap nodes consist of two fields:  | 
121  |  |  | 
122  |  | 1. An array of pointers.  If a Bitmap node holds N elements, the  | 
123  |  |    array will be of N pointers.  | 
124  |  |  | 
125  |  | 2. A 32bit integer -- a bitmap field.  If an N-th bit is set in the  | 
126  |  |    bitmap, it means that the node has an N-th element.  | 
127  |  |  | 
128  |  | For example, say we need to store a 3 elements sparse array:  | 
129  |  |  | 
130  |  |    +---+  --  +---+  --  +----+  --  +----+  | 
131  |  |    | 0 |  ..  | 4 |  ..  | 11 |  ..  | 17 |  | 
132  |  |    +---+  --  +---+  --  +----+  --  +----+  | 
133  |  |                 |          |           |  | 
134  |  |                 o1         o2          o3  | 
135  |  |  | 
136  |  | We allocate a three-pointer Bitmap node.  Its bitmap field will be  | 
137  |  | then set to:  | 
138  |  |  | 
139  |  |    0b_00100_00010_00000_10000 == (1 << 17) | (1 << 11) | (1 << 4)  | 
140  |  |  | 
141  |  | To check if our Bitmap node has an I-th element we can do:  | 
142  |  |  | 
143  |  |    bitmap & (1 << I)  | 
144  |  |  | 
145  |  |  | 
146  |  | And here's a formula to calculate a position in our pointer array  | 
147  |  | which would correspond to an I-th element:  | 
148  |  |  | 
149  |  |    popcount(bitmap & ((1 << I) - 1))  | 
150  |  |  | 
151  |  |  | 
152  |  | Let's break it down:  | 
153  |  |  | 
154  |  |  * `popcount` is a function that returns a number of bits set to 1;  | 
155  |  |  | 
156  |  |  * `((1 << I) - 1)` is a mask to filter the bitmask to contain bits  | 
157  |  |    set to the *right* of our bit.  | 
158  |  |  | 
159  |  |  | 
160  |  | So for our 17, 11, and 4 indexes:  | 
161  |  |  | 
162  |  |  * bitmap & ((1 << 17) - 1) == 0b100000010000 => 2 bits are set => index is 2.  | 
163  |  |  | 
164  |  |  * bitmap & ((1 << 11) - 1) == 0b10000 => 1 bit is set => index is 1.  | 
165  |  |  | 
166  |  |  * bitmap & ((1 << 4) - 1) == 0b0 => 0 bits are set => index is 0.  | 
167  |  |  | 
168  |  |  | 
169  |  | To conclude: Bitmap nodes are just like Array nodes -- they can store  | 
170  |  | a number of pointers, but use bitmap compression to eliminate unused  | 
171  |  | pointers.  | 
172  |  |  | 
173  |  |  | 
174  |  | Bitmap nodes have two pointers for each item:  | 
175  |  |  | 
176  |  |   +----+----+----+----+  --  +----+----+  | 
177  |  |   | k1 | v1 | k2 | v2 |  ..  | kN | vN |  | 
178  |  |   +----+----+----+----+  --  +----+----+  | 
179  |  |  | 
180  |  | When kI == NULL, vI points to another tree level.  | 
181  |  |  | 
182  |  | When kI != NULL, the actual key object is stored in kI, and its  | 
183  |  | value is stored in vI.  | 
184  |  |  | 
185  |  |  | 
186  |  | Collision Nodes  | 
187  |  | ---------------  | 
188  |  |  | 
189  |  | Collision nodes are simple arrays of pointers -- two pointers per  | 
190  |  | key/value.  When there's a hash collision, say for k1/v1 and k2/v2  | 
191  |  | we have `hash(k1)==hash(k2)`.  Then our collision node will be:  | 
192  |  |  | 
193  |  |   +----+----+----+----+  | 
194  |  |   | k1 | v1 | k2 | v2 |  | 
195  |  |   +----+----+----+----+  | 
196  |  |  | 
197  |  |  | 
198  |  | Tree Structure  | 
199  |  | --------------  | 
200  |  |  | 
201  |  | All nodes are PyObjects.  | 
202  |  |  | 
203  |  | The `PyHamtObject` object has a pointer to the root node (h_root),  | 
204  |  | and has a length field (h_count).  | 
205  |  |  | 
206  |  | High-level functions accept a PyHamtObject object and dispatch to  | 
207  |  | lower-level functions depending on what kind of node h_root points to.  | 
208  |  |  | 
209  |  |  | 
210  |  | Operations  | 
211  |  | ==========  | 
212  |  |  | 
213  |  | There are three fundamental operations on an immutable dictionary:  | 
214  |  |  | 
215  |  | 1. "o.assoc(k, v)" will return a new immutable dictionary, that will be  | 
216  |  |    a copy of "o", but with the "k/v" item set.  | 
217  |  |  | 
218  |  |    Functions in this file:  | 
219  |  |  | 
220  |  |         hamt_node_assoc, hamt_node_bitmap_assoc,  | 
221  |  |         hamt_node_array_assoc, hamt_node_collision_assoc  | 
222  |  |  | 
223  |  |    `hamt_node_assoc` function accepts a node object, and calls  | 
224  |  |    other functions depending on its actual type.  | 
225  |  |  | 
226  |  | 2. "o.find(k)" will lookup key "k" in "o".  | 
227  |  |  | 
228  |  |    Functions:  | 
229  |  |  | 
230  |  |         hamt_node_find, hamt_node_bitmap_find,  | 
231  |  |         hamt_node_array_find, hamt_node_collision_find  | 
232  |  |  | 
233  |  | 3. "o.without(k)" will return a new immutable dictionary, that will be  | 
234  |  |    a copy of "o", buth without the "k" key.  | 
235  |  |  | 
236  |  |    Functions:  | 
237  |  |  | 
238  |  |         hamt_node_without, hamt_node_bitmap_without,  | 
239  |  |         hamt_node_array_without, hamt_node_collision_without  | 
240  |  |  | 
241  |  |  | 
242  |  | Further Reading  | 
243  |  | ===============  | 
244  |  |  | 
245  |  | 1. http://blog.higher-order.net/2009/09/08/understanding-clojures-persistenthashmap-deftwice.html  | 
246  |  |  | 
247  |  | 2. http://blog.higher-order.net/2010/08/16/assoc-and-clojures-persistenthashmap-part-ii.html  | 
248  |  |  | 
249  |  | 3. Clojure's PersistentHashMap implementation:  | 
250  |  |    https://github.com/clojure/clojure/blob/master/src/jvm/clojure/lang/PersistentHashMap.java  | 
251  |  |  | 
252  |  |  | 
253  |  | Debug  | 
254  |  | =====  | 
255  |  |  | 
256  |  | The HAMT datatype is accessible for testing purposes under the  | 
257  |  | `_testcapi` module:  | 
258  |  |  | 
259  |  |     >>> from _testcapi import hamt  | 
260  |  |     >>> h = hamt()  | 
261  |  |     >>> h2 = h.set('a', 2) | 
262  |  |     >>> h3 = h2.set('b', 3) | 
263  |  |     >>> list(h3)  | 
264  |  |     ['a', 'b']  | 
265  |  |  | 
266  |  | When CPython is built in debug mode, a '__dump__()' method is available  | 
267  |  | to introspect the tree:  | 
268  |  |  | 
269  |  |     >>> print(h3.__dump__())  | 
270  |  |     HAMT(len=2):  | 
271  |  |         BitmapNode(size=4 count=2 bitmap=0b110 id=0x10eb9d9e8):  | 
272  |  |             'a': 2  | 
273  |  |             'b': 3  | 
274  |  | */  | 
275  |  |  | 
276  |  |  | 
277  | 0  | #define IS_ARRAY_NODE(node)     (Py_TYPE(node) == &_PyHamt_ArrayNode_Type)  | 
278  | 0  | #define IS_BITMAP_NODE(node)    (Py_TYPE(node) == &_PyHamt_BitmapNode_Type)  | 
279  |  | #define IS_COLLISION_NODE(node) (Py_TYPE(node) == &_PyHamt_CollisionNode_Type)  | 
280  |  |  | 
281  |  |  | 
282  |  | /* Return type for 'find' (lookup a key) functions.  | 
283  |  |  | 
284  |  |    * F_ERROR - an error occurred;  | 
285  |  |    * F_NOT_FOUND - the key was not found;  | 
286  |  |    * F_FOUND - the key was found.  | 
287  |  | */  | 
288  |  | typedef enum {F_ERROR, F_NOT_FOUND, F_FOUND} hamt_find_t; | 
289  |  |  | 
290  |  |  | 
291  |  | /* Return type for 'without' (delete a key) functions.  | 
292  |  |  | 
293  |  |    * W_ERROR - an error occurred;  | 
294  |  |    * W_NOT_FOUND - the key was not found: there's nothing to delete;  | 
295  |  |    * W_EMPTY - the key was found: the node/tree would be empty  | 
296  |  |      if the key is deleted;  | 
297  |  |    * W_NEWNODE - the key was found: a new node/tree is returned  | 
298  |  |      without that key.  | 
299  |  | */  | 
300  |  | typedef enum {W_ERROR, W_NOT_FOUND, W_EMPTY, W_NEWNODE} hamt_without_t; | 
301  |  |  | 
302  |  |  | 
303  |  | /* Low-level iterator protocol type.  | 
304  |  |  | 
305  |  |    * I_ITEM - a new item has been yielded;  | 
306  |  |    * I_END - the whole tree was visited (similar to StopIteration).  | 
307  |  | */  | 
308  |  | typedef enum {I_ITEM, I_END} hamt_iter_t; | 
309  |  |  | 
310  |  |  | 
311  | 0  | #define HAMT_ARRAY_NODE_SIZE 32  | 
312  |  |  | 
313  |  |  | 
314  |  | typedef struct { | 
315  |  |     PyObject_HEAD  | 
316  |  |     PyHamtNode *a_array[HAMT_ARRAY_NODE_SIZE];  | 
317  |  |     Py_ssize_t a_count;  | 
318  |  | } PyHamtNode_Array;  | 
319  |  |  | 
320  |  |  | 
321  |  | typedef struct { | 
322  |  |     PyObject_VAR_HEAD  | 
323  |  |     uint32_t b_bitmap;  | 
324  |  |     PyObject *b_array[1];  | 
325  |  | } PyHamtNode_Bitmap;  | 
326  |  |  | 
327  |  |  | 
328  |  | typedef struct { | 
329  |  |     PyObject_VAR_HEAD  | 
330  |  |     int32_t c_hash;  | 
331  |  |     PyObject *c_array[1];  | 
332  |  | } PyHamtNode_Collision;  | 
333  |  |  | 
334  |  |  | 
335  |  | static PyHamtNode_Bitmap *_empty_bitmap_node;  | 
336  |  | static PyHamtObject *_empty_hamt;  | 
337  |  |  | 
338  |  |  | 
339  |  | static PyHamtObject *  | 
340  |  | hamt_alloc(void);  | 
341  |  |  | 
342  |  | static PyHamtNode *  | 
343  |  | hamt_node_assoc(PyHamtNode *node,  | 
344  |  |                 uint32_t shift, int32_t hash,  | 
345  |  |                 PyObject *key, PyObject *val, int* added_leaf);  | 
346  |  |  | 
347  |  | static hamt_without_t  | 
348  |  | hamt_node_without(PyHamtNode *node,  | 
349  |  |                   uint32_t shift, int32_t hash,  | 
350  |  |                   PyObject *key,  | 
351  |  |                   PyHamtNode **new_node);  | 
352  |  |  | 
353  |  | static hamt_find_t  | 
354  |  | hamt_node_find(PyHamtNode *node,  | 
355  |  |                uint32_t shift, int32_t hash,  | 
356  |  |                PyObject *key, PyObject **val);  | 
357  |  |  | 
358  |  | #ifdef Py_DEBUG  | 
359  |  | static int  | 
360  |  | hamt_node_dump(PyHamtNode *node,  | 
361  |  |                _PyUnicodeWriter *writer, int level);  | 
362  |  | #endif  | 
363  |  |  | 
364  |  | static PyHamtNode *  | 
365  |  | hamt_node_array_new(Py_ssize_t);  | 
366  |  |  | 
367  |  | static PyHamtNode *  | 
368  |  | hamt_node_collision_new(int32_t hash, Py_ssize_t size);  | 
369  |  |  | 
370  |  | static inline Py_ssize_t  | 
371  |  | hamt_node_collision_count(PyHamtNode_Collision *node);  | 
372  |  |  | 
373  |  |  | 
374  |  | #ifdef Py_DEBUG  | 
375  |  | static void  | 
376  |  | _hamt_node_array_validate(void *obj_raw)  | 
377  |  | { | 
378  |  |     PyObject *obj = _PyObject_CAST(obj_raw);  | 
379  |  |     assert(IS_ARRAY_NODE(obj));  | 
380  |  |     PyHamtNode_Array *node = (PyHamtNode_Array*)obj;  | 
381  |  |     Py_ssize_t i = 0, count = 0;  | 
382  |  |     for (; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
383  |  |         if (node->a_array[i] != NULL) { | 
384  |  |             count++;  | 
385  |  |         }  | 
386  |  |     }  | 
387  |  |     assert(count == node->a_count);  | 
388  |  | }  | 
389  |  |  | 
390  |  | #define VALIDATE_ARRAY_NODE(NODE) \  | 
391  |  |     do { _hamt_node_array_validate(NODE); } while (0); | 
392  |  | #else  | 
393  |  | #define VALIDATE_ARRAY_NODE(NODE)  | 
394  |  | #endif  | 
395  |  |  | 
396  |  |  | 
397  |  | /* Returns -1 on error */  | 
398  |  | static inline int32_t  | 
399  |  | hamt_hash(PyObject *o)  | 
400  | 0  | { | 
401  | 0  |     Py_hash_t hash = PyObject_Hash(o);  | 
402  |  | 
  | 
403  |  | #if SIZEOF_PY_HASH_T <= 4  | 
404  |  |     return hash;  | 
405  |  | #else  | 
406  | 0  |     if (hash == -1) { | 
407  |  |         /* exception */  | 
408  | 0  |         return -1;  | 
409  | 0  |     }  | 
410  |  |  | 
411  |  |     /* While it's suboptimal to reduce Python's 64 bit hash to  | 
412  |  |        32 bits via XOR, it seems that the resulting hash function  | 
413  |  |        is good enough (this is also how Long type is hashed in Java.)  | 
414  |  |        Storing 10, 100, 1000 Python strings results in a relatively  | 
415  |  |        shallow and uniform tree structure.  | 
416  |  |  | 
417  |  |        Please don't change this hashing algorithm, as there are many  | 
418  |  |        tests that test some exact tree shape to cover all code paths.  | 
419  |  |     */  | 
420  | 0  |     int32_t xored = (int32_t)(hash & 0xffffffffl) ^ (int32_t)(hash >> 32);  | 
421  | 0  |     return xored == -1 ? -2 : xored;  | 
422  | 0  | #endif  | 
423  | 0  | }  | 
424  |  |  | 
425  |  | static inline uint32_t  | 
426  |  | hamt_mask(int32_t hash, uint32_t shift)  | 
427  | 0  | { | 
428  | 0  |     return (((uint32_t)hash >> shift) & 0x01f);  | 
429  | 0  | }  | 
430  |  |  | 
431  |  | static inline uint32_t  | 
432  |  | hamt_bitpos(int32_t hash, uint32_t shift)  | 
433  | 0  | { | 
434  | 0  |     return (uint32_t)1 << hamt_mask(hash, shift);  | 
435  | 0  | }  | 
436  |  |  | 
437  |  | static inline uint32_t  | 
438  |  | hamt_bitcount(uint32_t i)  | 
439  | 0  | { | 
440  |  |     /* We could use native popcount instruction but that would  | 
441  |  |        require to either add configure flags to enable SSE4.2  | 
442  |  |        support or to detect it dynamically.  Otherwise, we have  | 
443  |  |        a risk of CPython not working properly on older hardware.  | 
444  |  |  | 
445  |  |        In practice, there's no observable difference in  | 
446  |  |        performance between using a popcount instruction or the  | 
447  |  |        following fallback code.  | 
448  |  |  | 
449  |  |        The algorithm is copied from:  | 
450  |  |        https://graphics.stanford.edu/~seander/bithacks.html  | 
451  |  |     */  | 
452  | 0  |     i = i - ((i >> 1) & 0x55555555);  | 
453  | 0  |     i = (i & 0x33333333) + ((i >> 2) & 0x33333333);  | 
454  | 0  |     return (((i + (i >> 4)) & 0xF0F0F0F) * 0x1010101) >> 24;  | 
455  | 0  | }  | 
456  |  |  | 
457  |  | static inline uint32_t  | 
458  |  | hamt_bitindex(uint32_t bitmap, uint32_t bit)  | 
459  | 0  | { | 
460  | 0  |     return hamt_bitcount(bitmap & (bit - 1));  | 
461  | 0  | }  | 
462  |  |  | 
463  |  |  | 
464  |  | /////////////////////////////////// Dump Helpers  | 
465  |  | #ifdef Py_DEBUG  | 
466  |  |  | 
467  |  | static int  | 
468  |  | _hamt_dump_ident(_PyUnicodeWriter *writer, int level)  | 
469  |  | { | 
470  |  |     /* Write `'    ' * level` to the `writer` */  | 
471  |  |     PyObject *str = NULL;  | 
472  |  |     PyObject *num = NULL;  | 
473  |  |     PyObject *res = NULL;  | 
474  |  |     int ret = -1;  | 
475  |  |  | 
476  |  |     str = PyUnicode_FromString("    "); | 
477  |  |     if (str == NULL) { | 
478  |  |         goto error;  | 
479  |  |     }  | 
480  |  |  | 
481  |  |     num = PyLong_FromLong((long)level);  | 
482  |  |     if (num == NULL) { | 
483  |  |         goto error;  | 
484  |  |     }  | 
485  |  |  | 
486  |  |     res = PyNumber_Multiply(str, num);  | 
487  |  |     if (res == NULL) { | 
488  |  |         goto error;  | 
489  |  |     }  | 
490  |  |  | 
491  |  |     ret = _PyUnicodeWriter_WriteStr(writer, res);  | 
492  |  |  | 
493  |  | error:  | 
494  |  |     Py_XDECREF(res);  | 
495  |  |     Py_XDECREF(str);  | 
496  |  |     Py_XDECREF(num);  | 
497  |  |     return ret;  | 
498  |  | }  | 
499  |  |  | 
500  |  | static int  | 
501  |  | _hamt_dump_format(_PyUnicodeWriter *writer, const char *format, ...)  | 
502  |  | { | 
503  |  |     /* A convenient helper combining _PyUnicodeWriter_WriteStr and  | 
504  |  |        PyUnicode_FromFormatV.  | 
505  |  |     */  | 
506  |  |     PyObject* msg;  | 
507  |  |     int ret;  | 
508  |  |  | 
509  |  |     va_list vargs;  | 
510  |  | #ifdef HAVE_STDARG_PROTOTYPES  | 
511  |  |     va_start(vargs, format);  | 
512  |  | #else  | 
513  |  |     va_start(vargs);  | 
514  |  | #endif  | 
515  |  |     msg = PyUnicode_FromFormatV(format, vargs);  | 
516  |  |     va_end(vargs);  | 
517  |  |  | 
518  |  |     if (msg == NULL) { | 
519  |  |         return -1;  | 
520  |  |     }  | 
521  |  |  | 
522  |  |     ret = _PyUnicodeWriter_WriteStr(writer, msg);  | 
523  |  |     Py_DECREF(msg);  | 
524  |  |     return ret;  | 
525  |  | }  | 
526  |  |  | 
527  |  | #endif  /* Py_DEBUG */  | 
528  |  | /////////////////////////////////// Bitmap Node  | 
529  |  |  | 
530  |  |  | 
531  |  | static PyHamtNode *  | 
532  |  | hamt_node_bitmap_new(Py_ssize_t size)  | 
533  | 0  | { | 
534  |  |     /* Create a new bitmap node of size 'size' */  | 
535  |  | 
  | 
536  | 0  |     PyHamtNode_Bitmap *node;  | 
537  | 0  |     Py_ssize_t i;  | 
538  |  | 
  | 
539  | 0  |     assert(size >= 0);  | 
540  | 0  |     assert(size % 2 == 0);  | 
541  |  | 
  | 
542  | 0  |     if (size == 0 && _empty_bitmap_node != NULL) { | 
543  | 0  |         Py_INCREF(_empty_bitmap_node);  | 
544  | 0  |         return (PyHamtNode *)_empty_bitmap_node;  | 
545  | 0  |     }  | 
546  |  |  | 
547  |  |     /* No freelist; allocate a new bitmap node */  | 
548  | 0  |     node = PyObject_GC_NewVar(  | 
549  | 0  |         PyHamtNode_Bitmap, &_PyHamt_BitmapNode_Type, size);  | 
550  | 0  |     if (node == NULL) { | 
551  | 0  |         return NULL;  | 
552  | 0  |     }  | 
553  |  |  | 
554  | 0  |     Py_SIZE(node) = size;  | 
555  |  | 
  | 
556  | 0  |     for (i = 0; i < size; i++) { | 
557  | 0  |         node->b_array[i] = NULL;  | 
558  | 0  |     }  | 
559  |  | 
  | 
560  | 0  |     node->b_bitmap = 0;  | 
561  |  | 
  | 
562  | 0  |     _PyObject_GC_TRACK(node);  | 
563  |  | 
  | 
564  | 0  |     if (size == 0 && _empty_bitmap_node == NULL) { | 
565  |  |         /* Since bitmap nodes are immutable, we can cache the instance  | 
566  |  |            for size=0 and reuse it whenever we need an empty bitmap node.  | 
567  |  |         */  | 
568  | 0  |         _empty_bitmap_node = node;  | 
569  | 0  |         Py_INCREF(_empty_bitmap_node);  | 
570  | 0  |     }  | 
571  |  | 
  | 
572  | 0  |     return (PyHamtNode *)node;  | 
573  | 0  | }  | 
574  |  |  | 
575  |  | static inline Py_ssize_t  | 
576  |  | hamt_node_bitmap_count(PyHamtNode_Bitmap *node)  | 
577  | 0  | { | 
578  | 0  |     return Py_SIZE(node) / 2;  | 
579  | 0  | }  | 
580  |  |  | 
581  |  | static PyHamtNode_Bitmap *  | 
582  |  | hamt_node_bitmap_clone(PyHamtNode_Bitmap *node)  | 
583  | 0  | { | 
584  |  |     /* Clone a bitmap node; return a new one with the same child notes. */  | 
585  |  | 
  | 
586  | 0  |     PyHamtNode_Bitmap *clone;  | 
587  | 0  |     Py_ssize_t i;  | 
588  |  | 
  | 
589  | 0  |     clone = (PyHamtNode_Bitmap *)hamt_node_bitmap_new(Py_SIZE(node));  | 
590  | 0  |     if (clone == NULL) { | 
591  | 0  |         return NULL;  | 
592  | 0  |     }  | 
593  |  |  | 
594  | 0  |     for (i = 0; i < Py_SIZE(node); i++) { | 
595  | 0  |         Py_XINCREF(node->b_array[i]);  | 
596  | 0  |         clone->b_array[i] = node->b_array[i];  | 
597  | 0  |     }  | 
598  |  | 
  | 
599  | 0  |     clone->b_bitmap = node->b_bitmap;  | 
600  | 0  |     return clone;  | 
601  | 0  | }  | 
602  |  |  | 
603  |  | static PyHamtNode_Bitmap *  | 
604  |  | hamt_node_bitmap_clone_without(PyHamtNode_Bitmap *o, uint32_t bit)  | 
605  | 0  | { | 
606  | 0  |     assert(bit & o->b_bitmap);  | 
607  | 0  |     assert(hamt_node_bitmap_count(o) > 1);  | 
608  |  | 
  | 
609  | 0  |     PyHamtNode_Bitmap *new = (PyHamtNode_Bitmap *)hamt_node_bitmap_new(  | 
610  | 0  |         Py_SIZE(o) - 2);  | 
611  | 0  |     if (new == NULL) { | 
612  | 0  |         return NULL;  | 
613  | 0  |     }  | 
614  |  |  | 
615  | 0  |     uint32_t idx = hamt_bitindex(o->b_bitmap, bit);  | 
616  | 0  |     uint32_t key_idx = 2 * idx;  | 
617  | 0  |     uint32_t val_idx = key_idx + 1;  | 
618  | 0  |     uint32_t i;  | 
619  |  | 
  | 
620  | 0  |     for (i = 0; i < key_idx; i++) { | 
621  | 0  |         Py_XINCREF(o->b_array[i]);  | 
622  | 0  |         new->b_array[i] = o->b_array[i];  | 
623  | 0  |     }  | 
624  |  | 
  | 
625  | 0  |     assert(Py_SIZE(o) >= 0 && Py_SIZE(o) <= 32);  | 
626  | 0  |     for (i = val_idx + 1; i < (uint32_t)Py_SIZE(o); i++) { | 
627  | 0  |         Py_XINCREF(o->b_array[i]);  | 
628  | 0  |         new->b_array[i - 2] = o->b_array[i];  | 
629  | 0  |     }  | 
630  |  | 
  | 
631  | 0  |     new->b_bitmap = o->b_bitmap & ~bit;  | 
632  | 0  |     return new;  | 
633  | 0  | }  | 
634  |  |  | 
635  |  | static PyHamtNode *  | 
636  |  | hamt_node_new_bitmap_or_collision(uint32_t shift,  | 
637  |  |                                   PyObject *key1, PyObject *val1,  | 
638  |  |                                   int32_t key2_hash,  | 
639  |  |                                   PyObject *key2, PyObject *val2)  | 
640  | 0  | { | 
641  |  |     /* Helper method.  Creates a new node for key1/val and key2/val2  | 
642  |  |        pairs.  | 
643  |  |  | 
644  |  |        If key1 hash is equal to the hash of key2, a Collision node  | 
645  |  |        will be created.  If they are not equal, a Bitmap node is  | 
646  |  |        created.  | 
647  |  |     */  | 
648  |  | 
  | 
649  | 0  |     int32_t key1_hash = hamt_hash(key1);  | 
650  | 0  |     if (key1_hash == -1) { | 
651  | 0  |         return NULL;  | 
652  | 0  |     }  | 
653  |  |  | 
654  | 0  |     if (key1_hash == key2_hash) { | 
655  | 0  |         PyHamtNode_Collision *n;  | 
656  | 0  |         n = (PyHamtNode_Collision *)hamt_node_collision_new(key1_hash, 4);  | 
657  | 0  |         if (n == NULL) { | 
658  | 0  |             return NULL;  | 
659  | 0  |         }  | 
660  |  |  | 
661  | 0  |         Py_INCREF(key1);  | 
662  | 0  |         n->c_array[0] = key1;  | 
663  | 0  |         Py_INCREF(val1);  | 
664  | 0  |         n->c_array[1] = val1;  | 
665  |  | 
  | 
666  | 0  |         Py_INCREF(key2);  | 
667  | 0  |         n->c_array[2] = key2;  | 
668  | 0  |         Py_INCREF(val2);  | 
669  | 0  |         n->c_array[3] = val2;  | 
670  |  | 
  | 
671  | 0  |         return (PyHamtNode *)n;  | 
672  | 0  |     }  | 
673  | 0  |     else { | 
674  | 0  |         int added_leaf = 0;  | 
675  | 0  |         PyHamtNode *n = hamt_node_bitmap_new(0);  | 
676  | 0  |         if (n == NULL) { | 
677  | 0  |             return NULL;  | 
678  | 0  |         }  | 
679  |  |  | 
680  | 0  |         PyHamtNode *n2 = hamt_node_assoc(  | 
681  | 0  |             n, shift, key1_hash, key1, val1, &added_leaf);  | 
682  | 0  |         Py_DECREF(n);  | 
683  | 0  |         if (n2 == NULL) { | 
684  | 0  |             return NULL;  | 
685  | 0  |         }  | 
686  |  |  | 
687  | 0  |         n = hamt_node_assoc(n2, shift, key2_hash, key2, val2, &added_leaf);  | 
688  | 0  |         Py_DECREF(n2);  | 
689  | 0  |         if (n == NULL) { | 
690  | 0  |             return NULL;  | 
691  | 0  |         }  | 
692  |  |  | 
693  | 0  |         return n;  | 
694  | 0  |     }  | 
695  | 0  | }  | 
696  |  |  | 
697  |  | static PyHamtNode *  | 
698  |  | hamt_node_bitmap_assoc(PyHamtNode_Bitmap *self,  | 
699  |  |                        uint32_t shift, int32_t hash,  | 
700  |  |                        PyObject *key, PyObject *val, int* added_leaf)  | 
701  | 0  | { | 
702  |  |     /* assoc operation for bitmap nodes.  | 
703  |  |  | 
704  |  |        Return: a new node, or self if key/val already is in the  | 
705  |  |        collection.  | 
706  |  |  | 
707  |  |        'added_leaf' is later used in '_PyHamt_Assoc' to determine if  | 
708  |  |        `hamt.set(key, val)` increased the size of the collection.  | 
709  |  |     */  | 
710  |  | 
  | 
711  | 0  |     uint32_t bit = hamt_bitpos(hash, shift);  | 
712  | 0  |     uint32_t idx = hamt_bitindex(self->b_bitmap, bit);  | 
713  |  |  | 
714  |  |     /* Bitmap node layout:  | 
715  |  |  | 
716  |  |     +------+------+------+------+  ---  +------+------+  | 
717  |  |     | key1 | val1 | key2 | val2 |  ...  | keyN | valN |  | 
718  |  |     +------+------+------+------+  ---  +------+------+  | 
719  |  |     where `N < Py_SIZE(node)`.  | 
720  |  |  | 
721  |  |     The `node->b_bitmap` field is a bitmap.  For a given  | 
722  |  |     `(shift, hash)` pair we can determine:  | 
723  |  |  | 
724  |  |      - If this node has the corresponding key/val slots.  | 
725  |  |      - The index of key/val slots.  | 
726  |  |     */  | 
727  |  | 
  | 
728  | 0  |     if (self->b_bitmap & bit) { | 
729  |  |         /* The key is set in this node */  | 
730  |  | 
  | 
731  | 0  |         uint32_t key_idx = 2 * idx;  | 
732  | 0  |         uint32_t val_idx = key_idx + 1;  | 
733  |  | 
  | 
734  | 0  |         assert(val_idx < (size_t)Py_SIZE(self));  | 
735  |  | 
  | 
736  | 0  |         PyObject *key_or_null = self->b_array[key_idx];  | 
737  | 0  |         PyObject *val_or_node = self->b_array[val_idx];  | 
738  |  | 
  | 
739  | 0  |         if (key_or_null == NULL) { | 
740  |  |             /* key is NULL.  This means that we have a few keys  | 
741  |  |                that have the same (hash, shift) pair. */  | 
742  |  | 
  | 
743  | 0  |             assert(val_or_node != NULL);  | 
744  |  | 
  | 
745  | 0  |             PyHamtNode *sub_node = hamt_node_assoc(  | 
746  | 0  |                 (PyHamtNode *)val_or_node,  | 
747  | 0  |                 shift + 5, hash, key, val, added_leaf);  | 
748  | 0  |             if (sub_node == NULL) { | 
749  | 0  |                 return NULL;  | 
750  | 0  |             }  | 
751  |  |  | 
752  | 0  |             if (val_or_node == (PyObject *)sub_node) { | 
753  | 0  |                 Py_DECREF(sub_node);  | 
754  | 0  |                 Py_INCREF(self);  | 
755  | 0  |                 return (PyHamtNode *)self;  | 
756  | 0  |             }  | 
757  |  |  | 
758  | 0  |             PyHamtNode_Bitmap *ret = hamt_node_bitmap_clone(self);  | 
759  | 0  |             if (ret == NULL) { | 
760  | 0  |                 return NULL;  | 
761  | 0  |             }  | 
762  | 0  |             Py_SETREF(ret->b_array[val_idx], (PyObject*)sub_node);  | 
763  | 0  |             return (PyHamtNode *)ret;  | 
764  | 0  |         }  | 
765  |  |  | 
766  | 0  |         assert(key != NULL);  | 
767  |  |         /* key is not NULL.  This means that we have only one other  | 
768  |  |            key in this collection that matches our hash for this shift. */  | 
769  |  | 
  | 
770  | 0  |         int comp_err = PyObject_RichCompareBool(key, key_or_null, Py_EQ);  | 
771  | 0  |         if (comp_err < 0) {  /* exception in __eq__ */ | 
772  | 0  |             return NULL;  | 
773  | 0  |         }  | 
774  | 0  |         if (comp_err == 1) {  /* key == key_or_null */ | 
775  | 0  |             if (val == val_or_node) { | 
776  |  |                 /* we already have the same key/val pair; return self. */  | 
777  | 0  |                 Py_INCREF(self);  | 
778  | 0  |                 return (PyHamtNode *)self;  | 
779  | 0  |             }  | 
780  |  |  | 
781  |  |             /* We're setting a new value for the key we had before.  | 
782  |  |                Make a new bitmap node with a replaced value, and return it. */  | 
783  | 0  |             PyHamtNode_Bitmap *ret = hamt_node_bitmap_clone(self);  | 
784  | 0  |             if (ret == NULL) { | 
785  | 0  |                 return NULL;  | 
786  | 0  |             }  | 
787  | 0  |             Py_INCREF(val);  | 
788  | 0  |             Py_SETREF(ret->b_array[val_idx], val);  | 
789  | 0  |             return (PyHamtNode *)ret;  | 
790  | 0  |         }  | 
791  |  |  | 
792  |  |         /* It's a new key, and it has the same index as *one* another key.  | 
793  |  |            We have a collision.  We need to create a new node which will  | 
794  |  |            combine the existing key and the key we're adding.  | 
795  |  |  | 
796  |  |            `hamt_node_new_bitmap_or_collision` will either create a new  | 
797  |  |            Collision node if the keys have identical hashes, or  | 
798  |  |            a new Bitmap node.  | 
799  |  |         */  | 
800  | 0  |         PyHamtNode *sub_node = hamt_node_new_bitmap_or_collision(  | 
801  | 0  |             shift + 5,  | 
802  | 0  |             key_or_null, val_or_node,  /* existing key/val */  | 
803  | 0  |             hash,  | 
804  | 0  |             key, val  /* new key/val */  | 
805  | 0  |         );  | 
806  | 0  |         if (sub_node == NULL) { | 
807  | 0  |             return NULL;  | 
808  | 0  |         }  | 
809  |  |  | 
810  | 0  |         PyHamtNode_Bitmap *ret = hamt_node_bitmap_clone(self);  | 
811  | 0  |         if (ret == NULL) { | 
812  | 0  |             Py_DECREF(sub_node);  | 
813  | 0  |             return NULL;  | 
814  | 0  |         }  | 
815  | 0  |         Py_SETREF(ret->b_array[key_idx], NULL);  | 
816  | 0  |         Py_SETREF(ret->b_array[val_idx], (PyObject *)sub_node);  | 
817  |  | 
  | 
818  | 0  |         *added_leaf = 1;  | 
819  | 0  |         return (PyHamtNode *)ret;  | 
820  | 0  |     }  | 
821  | 0  |     else { | 
822  |  |         /* There was no key before with the same (shift,hash). */  | 
823  |  | 
  | 
824  | 0  |         uint32_t n = hamt_bitcount(self->b_bitmap);  | 
825  |  | 
  | 
826  | 0  |         if (n >= 16) { | 
827  |  |             /* When we have a situation where we want to store more  | 
828  |  |                than 16 nodes at one level of the tree, we no longer  | 
829  |  |                want to use the Bitmap node with bitmap encoding.  | 
830  |  |  | 
831  |  |                Instead we start using an Array node, which has  | 
832  |  |                simpler (faster) implementation at the expense of  | 
833  |  |                having prealocated 32 pointers for its keys/values  | 
834  |  |                pairs.  | 
835  |  |  | 
836  |  |                Small hamt objects (<30 keys) usually don't have any  | 
837  |  |                Array nodes at all.  Between ~30 and ~400 keys hamt  | 
838  |  |                objects usually have one Array node, and usually it's  | 
839  |  |                a root node.  | 
840  |  |             */  | 
841  |  | 
  | 
842  | 0  |             uint32_t jdx = hamt_mask(hash, shift);  | 
843  |  |             /* 'jdx' is the index of where the new key should be added  | 
844  |  |                in the new Array node we're about to create. */  | 
845  |  | 
  | 
846  | 0  |             PyHamtNode *empty = NULL;  | 
847  | 0  |             PyHamtNode_Array *new_node = NULL;  | 
848  | 0  |             PyHamtNode *res = NULL;  | 
849  |  |  | 
850  |  |             /* Create a new Array node. */  | 
851  | 0  |             new_node = (PyHamtNode_Array *)hamt_node_array_new(n + 1);  | 
852  | 0  |             if (new_node == NULL) { | 
853  | 0  |                 goto fin;  | 
854  | 0  |             }  | 
855  |  |  | 
856  |  |             /* Create an empty bitmap node for the next  | 
857  |  |                hamt_node_assoc call. */  | 
858  | 0  |             empty = hamt_node_bitmap_new(0);  | 
859  | 0  |             if (empty == NULL) { | 
860  | 0  |                 goto fin;  | 
861  | 0  |             }  | 
862  |  |  | 
863  |  |             /* Make a new bitmap node for the key/val we're adding.  | 
864  |  |                Set that bitmap node to new-array-node[jdx]. */  | 
865  | 0  |             new_node->a_array[jdx] = hamt_node_assoc(  | 
866  | 0  |                 empty, shift + 5, hash, key, val, added_leaf);  | 
867  | 0  |             if (new_node->a_array[jdx] == NULL) { | 
868  | 0  |                 goto fin;  | 
869  | 0  |             }  | 
870  |  |  | 
871  |  |             /* Copy existing key/value pairs from the current Bitmap  | 
872  |  |                node to the new Array node we've just created. */  | 
873  | 0  |             Py_ssize_t i, j;  | 
874  | 0  |             for (i = 0, j = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
875  | 0  |                 if (((self->b_bitmap >> i) & 1) != 0) { | 
876  |  |                     /* Ensure we don't accidentally override `jdx` element  | 
877  |  |                        we set few lines above.  | 
878  |  |                     */  | 
879  | 0  |                     assert(new_node->a_array[i] == NULL);  | 
880  |  | 
  | 
881  | 0  |                     if (self->b_array[j] == NULL) { | 
882  | 0  |                         new_node->a_array[i] =  | 
883  | 0  |                             (PyHamtNode *)self->b_array[j + 1];  | 
884  | 0  |                         Py_INCREF(new_node->a_array[i]);  | 
885  | 0  |                     }  | 
886  | 0  |                     else { | 
887  | 0  |                         int32_t rehash = hamt_hash(self->b_array[j]);  | 
888  | 0  |                         if (rehash == -1) { | 
889  | 0  |                             goto fin;  | 
890  | 0  |                         }  | 
891  |  |  | 
892  | 0  |                         new_node->a_array[i] = hamt_node_assoc(  | 
893  | 0  |                             empty, shift + 5,  | 
894  | 0  |                             rehash,  | 
895  | 0  |                             self->b_array[j],  | 
896  | 0  |                             self->b_array[j + 1],  | 
897  | 0  |                             added_leaf);  | 
898  |  | 
  | 
899  | 0  |                         if (new_node->a_array[i] == NULL) { | 
900  | 0  |                             goto fin;  | 
901  | 0  |                         }  | 
902  | 0  |                     }  | 
903  | 0  |                     j += 2;  | 
904  | 0  |                 }  | 
905  | 0  |             }  | 
906  |  |  | 
907  | 0  |             VALIDATE_ARRAY_NODE(new_node)  | 
908  |  |  | 
909  |  |             /* That's it! */  | 
910  | 0  |             res = (PyHamtNode *)new_node;  | 
911  |  | 
  | 
912  | 0  |         fin:  | 
913  | 0  |             Py_XDECREF(empty);  | 
914  | 0  |             if (res == NULL) { | 
915  | 0  |                 Py_XDECREF(new_node);  | 
916  | 0  |             }  | 
917  | 0  |             return res;  | 
918  | 0  |         }  | 
919  | 0  |         else { | 
920  |  |             /* We have less than 16 keys at this level; let's just  | 
921  |  |                create a new bitmap node out of this node with the  | 
922  |  |                new key/val pair added. */  | 
923  |  | 
  | 
924  | 0  |             uint32_t key_idx = 2 * idx;  | 
925  | 0  |             uint32_t val_idx = key_idx + 1;  | 
926  | 0  |             uint32_t i;  | 
927  |  | 
  | 
928  | 0  |             *added_leaf = 1;  | 
929  |  |  | 
930  |  |             /* Allocate new Bitmap node which can have one more key/val  | 
931  |  |                pair in addition to what we have already. */  | 
932  | 0  |             PyHamtNode_Bitmap *new_node =  | 
933  | 0  |                 (PyHamtNode_Bitmap *)hamt_node_bitmap_new(2 * (n + 1));  | 
934  | 0  |             if (new_node == NULL) { | 
935  | 0  |                 return NULL;  | 
936  | 0  |             }  | 
937  |  |  | 
938  |  |             /* Copy all keys/values that will be before the new key/value  | 
939  |  |                we are adding. */  | 
940  | 0  |             for (i = 0; i < key_idx; i++) { | 
941  | 0  |                 Py_XINCREF(self->b_array[i]);  | 
942  | 0  |                 new_node->b_array[i] = self->b_array[i];  | 
943  | 0  |             }  | 
944  |  |  | 
945  |  |             /* Set the new key/value to the new Bitmap node. */  | 
946  | 0  |             Py_INCREF(key);  | 
947  | 0  |             new_node->b_array[key_idx] = key;  | 
948  | 0  |             Py_INCREF(val);  | 
949  | 0  |             new_node->b_array[val_idx] = val;  | 
950  |  |  | 
951  |  |             /* Copy all keys/values that will be after the new key/value  | 
952  |  |                we are adding. */  | 
953  | 0  |             assert(Py_SIZE(self) >= 0 && Py_SIZE(self) <= 32);  | 
954  | 0  |             for (i = key_idx; i < (uint32_t)Py_SIZE(self); i++) { | 
955  | 0  |                 Py_XINCREF(self->b_array[i]);  | 
956  | 0  |                 new_node->b_array[i + 2] = self->b_array[i];  | 
957  | 0  |             }  | 
958  |  | 
  | 
959  | 0  |             new_node->b_bitmap = self->b_bitmap | bit;  | 
960  | 0  |             return (PyHamtNode *)new_node;  | 
961  | 0  |         }  | 
962  | 0  |     }  | 
963  | 0  | }  | 
964  |  |  | 
965  |  | static hamt_without_t  | 
966  |  | hamt_node_bitmap_without(PyHamtNode_Bitmap *self,  | 
967  |  |                          uint32_t shift, int32_t hash,  | 
968  |  |                          PyObject *key,  | 
969  |  |                          PyHamtNode **new_node)  | 
970  | 0  | { | 
971  | 0  |     uint32_t bit = hamt_bitpos(hash, shift);  | 
972  | 0  |     if ((self->b_bitmap & bit) == 0) { | 
973  | 0  |         return W_NOT_FOUND;  | 
974  | 0  |     }  | 
975  |  |  | 
976  | 0  |     uint32_t idx = hamt_bitindex(self->b_bitmap, bit);  | 
977  |  | 
  | 
978  | 0  |     uint32_t key_idx = 2 * idx;  | 
979  | 0  |     uint32_t val_idx = key_idx + 1;  | 
980  |  | 
  | 
981  | 0  |     PyObject *key_or_null = self->b_array[key_idx];  | 
982  | 0  |     PyObject *val_or_node = self->b_array[val_idx];  | 
983  |  | 
  | 
984  | 0  |     if (key_or_null == NULL) { | 
985  |  |         /* key == NULL means that 'value' is another tree node. */  | 
986  |  | 
  | 
987  | 0  |         PyHamtNode *sub_node = NULL;  | 
988  |  | 
  | 
989  | 0  |         hamt_without_t res = hamt_node_without(  | 
990  | 0  |             (PyHamtNode *)val_or_node,  | 
991  | 0  |             shift + 5, hash, key, &sub_node);  | 
992  |  | 
  | 
993  | 0  |         switch (res) { | 
994  | 0  |             case W_EMPTY:  | 
995  |  |                 /* It's impossible for us to receive a W_EMPTY here:  | 
996  |  |  | 
997  |  |                     - Array nodes are converted to Bitmap nodes when  | 
998  |  |                       we delete 16th item from them;  | 
999  |  |  | 
1000  |  |                     - Collision nodes are converted to Bitmap when  | 
1001  |  |                       there is one item in them;  | 
1002  |  |  | 
1003  |  |                     - Bitmap node's without() inlines single-item  | 
1004  |  |                       sub-nodes.  | 
1005  |  |  | 
1006  |  |                    So in no situation we can have a single-item  | 
1007  |  |                    Bitmap child of another Bitmap node.  | 
1008  |  |                 */  | 
1009  | 0  |                 Py_UNREACHABLE();  | 
1010  |  |  | 
1011  | 0  |             case W_NEWNODE: { | 
1012  | 0  |                 assert(sub_node != NULL);  | 
1013  |  | 
  | 
1014  | 0  |                 if (IS_BITMAP_NODE(sub_node)) { | 
1015  | 0  |                     PyHamtNode_Bitmap *sub_tree = (PyHamtNode_Bitmap *)sub_node;  | 
1016  | 0  |                     if (hamt_node_bitmap_count(sub_tree) == 1 &&  | 
1017  | 0  |                             sub_tree->b_array[0] != NULL)  | 
1018  | 0  |                     { | 
1019  |  |                         /* A bitmap node with one key/value pair.  Just  | 
1020  |  |                            merge it into this node.  | 
1021  |  |  | 
1022  |  |                            Note that we don't inline Bitmap nodes that  | 
1023  |  |                            have a NULL key -- those nodes point to another  | 
1024  |  |                            tree level, and we cannot simply move tree levels  | 
1025  |  |                            up or down.  | 
1026  |  |                         */  | 
1027  |  | 
  | 
1028  | 0  |                         PyHamtNode_Bitmap *clone = hamt_node_bitmap_clone(self);  | 
1029  | 0  |                         if (clone == NULL) { | 
1030  | 0  |                             Py_DECREF(sub_node);  | 
1031  | 0  |                             return W_ERROR;  | 
1032  | 0  |                         }  | 
1033  |  |  | 
1034  | 0  |                         PyObject *key = sub_tree->b_array[0];  | 
1035  | 0  |                         PyObject *val = sub_tree->b_array[1];  | 
1036  |  | 
  | 
1037  | 0  |                         Py_INCREF(key);  | 
1038  | 0  |                         Py_XSETREF(clone->b_array[key_idx], key);  | 
1039  | 0  |                         Py_INCREF(val);  | 
1040  | 0  |                         Py_SETREF(clone->b_array[val_idx], val);  | 
1041  |  | 
  | 
1042  | 0  |                         Py_DECREF(sub_tree);  | 
1043  |  | 
  | 
1044  | 0  |                         *new_node = (PyHamtNode *)clone;  | 
1045  | 0  |                         return W_NEWNODE;  | 
1046  | 0  |                     }  | 
1047  | 0  |                 }  | 
1048  |  |  | 
1049  |  | #ifdef Py_DEBUG  | 
1050  |  |                 /* Ensure that Collision.without implementation  | 
1051  |  |                    converts to Bitmap nodes itself.  | 
1052  |  |                 */  | 
1053  |  |                 if (IS_COLLISION_NODE(sub_node)) { | 
1054  |  |                     assert(hamt_node_collision_count(  | 
1055  |  |                             (PyHamtNode_Collision*)sub_node) > 1);  | 
1056  |  |                 }  | 
1057  |  | #endif  | 
1058  |  |  | 
1059  | 0  |                 PyHamtNode_Bitmap *clone = hamt_node_bitmap_clone(self);  | 
1060  | 0  |                 if (clone == NULL) { | 
1061  | 0  |                     return W_ERROR;  | 
1062  | 0  |                 }  | 
1063  |  |  | 
1064  | 0  |                 Py_SETREF(clone->b_array[val_idx],  | 
1065  | 0  |                           (PyObject *)sub_node);  /* borrow */  | 
1066  |  | 
  | 
1067  | 0  |                 *new_node = (PyHamtNode *)clone;  | 
1068  | 0  |                 return W_NEWNODE;  | 
1069  | 0  |             }  | 
1070  |  |  | 
1071  | 0  |             case W_ERROR:  | 
1072  | 0  |             case W_NOT_FOUND:  | 
1073  | 0  |                 assert(sub_node == NULL);  | 
1074  | 0  |                 return res;  | 
1075  |  |  | 
1076  | 0  |             default:  | 
1077  | 0  |                 Py_UNREACHABLE();  | 
1078  | 0  |         }  | 
1079  | 0  |     }  | 
1080  | 0  |     else { | 
1081  |  |         /* We have a regular key/value pair */  | 
1082  |  | 
  | 
1083  | 0  |         int cmp = PyObject_RichCompareBool(key_or_null, key, Py_EQ);  | 
1084  | 0  |         if (cmp < 0) { | 
1085  | 0  |             return W_ERROR;  | 
1086  | 0  |         }  | 
1087  | 0  |         if (cmp == 0) { | 
1088  | 0  |             return W_NOT_FOUND;  | 
1089  | 0  |         }  | 
1090  |  |  | 
1091  | 0  |         if (hamt_node_bitmap_count(self) == 1) { | 
1092  | 0  |             return W_EMPTY;  | 
1093  | 0  |         }  | 
1094  |  |  | 
1095  | 0  |         *new_node = (PyHamtNode *)  | 
1096  | 0  |             hamt_node_bitmap_clone_without(self, bit);  | 
1097  | 0  |         if (*new_node == NULL) { | 
1098  | 0  |             return W_ERROR;  | 
1099  | 0  |         }  | 
1100  |  |  | 
1101  | 0  |         return W_NEWNODE;  | 
1102  | 0  |     }  | 
1103  | 0  | }  | 
1104  |  |  | 
1105  |  | static hamt_find_t  | 
1106  |  | hamt_node_bitmap_find(PyHamtNode_Bitmap *self,  | 
1107  |  |                       uint32_t shift, int32_t hash,  | 
1108  |  |                       PyObject *key, PyObject **val)  | 
1109  | 0  | { | 
1110  |  |     /* Lookup a key in a Bitmap node. */  | 
1111  |  | 
  | 
1112  | 0  |     uint32_t bit = hamt_bitpos(hash, shift);  | 
1113  | 0  |     uint32_t idx;  | 
1114  | 0  |     uint32_t key_idx;  | 
1115  | 0  |     uint32_t val_idx;  | 
1116  | 0  |     PyObject *key_or_null;  | 
1117  | 0  |     PyObject *val_or_node;  | 
1118  | 0  |     int comp_err;  | 
1119  |  | 
  | 
1120  | 0  |     if ((self->b_bitmap & bit) == 0) { | 
1121  | 0  |         return F_NOT_FOUND;  | 
1122  | 0  |     }  | 
1123  |  |  | 
1124  | 0  |     idx = hamt_bitindex(self->b_bitmap, bit);  | 
1125  | 0  |     key_idx = idx * 2;  | 
1126  | 0  |     val_idx = key_idx + 1;  | 
1127  |  | 
  | 
1128  | 0  |     assert(val_idx < (size_t)Py_SIZE(self));  | 
1129  |  | 
  | 
1130  | 0  |     key_or_null = self->b_array[key_idx];  | 
1131  | 0  |     val_or_node = self->b_array[val_idx];  | 
1132  |  | 
  | 
1133  | 0  |     if (key_or_null == NULL) { | 
1134  |  |         /* There are a few keys that have the same hash at the current shift  | 
1135  |  |            that match our key.  Dispatch the lookup further down the tree. */  | 
1136  | 0  |         assert(val_or_node != NULL);  | 
1137  | 0  |         return hamt_node_find((PyHamtNode *)val_or_node,  | 
1138  | 0  |                               shift + 5, hash, key, val);  | 
1139  | 0  |     }  | 
1140  |  |  | 
1141  |  |     /* We have only one key -- a potential match.  Let's compare if the  | 
1142  |  |        key we are looking at is equal to the key we are looking for. */  | 
1143  | 0  |     assert(key != NULL);  | 
1144  | 0  |     comp_err = PyObject_RichCompareBool(key, key_or_null, Py_EQ);  | 
1145  | 0  |     if (comp_err < 0) {  /* exception in __eq__ */ | 
1146  | 0  |         return F_ERROR;  | 
1147  | 0  |     }  | 
1148  | 0  |     if (comp_err == 1) {  /* key == key_or_null */ | 
1149  | 0  |         *val = val_or_node;  | 
1150  | 0  |         return F_FOUND;  | 
1151  | 0  |     }  | 
1152  |  |  | 
1153  | 0  |     return F_NOT_FOUND;  | 
1154  | 0  | }  | 
1155  |  |  | 
1156  |  | static int  | 
1157  |  | hamt_node_bitmap_traverse(PyHamtNode_Bitmap *self, visitproc visit, void *arg)  | 
1158  | 0  | { | 
1159  |  |     /* Bitmap's tp_traverse */  | 
1160  |  | 
  | 
1161  | 0  |     Py_ssize_t i;  | 
1162  |  | 
  | 
1163  | 0  |     for (i = Py_SIZE(self); --i >= 0; ) { | 
1164  | 0  |         Py_VISIT(self->b_array[i]);  | 
1165  | 0  |     }  | 
1166  |  |  | 
1167  | 0  |     return 0;  | 
1168  | 0  | }  | 
1169  |  |  | 
1170  |  | static void  | 
1171  |  | hamt_node_bitmap_dealloc(PyHamtNode_Bitmap *self)  | 
1172  | 0  | { | 
1173  |  |     /* Bitmap's tp_dealloc */  | 
1174  |  | 
  | 
1175  | 0  |     Py_ssize_t len = Py_SIZE(self);  | 
1176  | 0  |     Py_ssize_t i;  | 
1177  |  | 
  | 
1178  | 0  |     PyObject_GC_UnTrack(self);  | 
1179  | 0  |     Py_TRASHCAN_BEGIN(self, hamt_node_bitmap_dealloc)  | 
1180  |  |  | 
1181  | 0  |     if (len > 0) { | 
1182  | 0  |         i = len;  | 
1183  | 0  |         while (--i >= 0) { | 
1184  | 0  |             Py_XDECREF(self->b_array[i]);  | 
1185  | 0  |         }  | 
1186  | 0  |     }  | 
1187  |  | 
  | 
1188  | 0  |     Py_TYPE(self)->tp_free((PyObject *)self);  | 
1189  | 0  |     Py_TRASHCAN_END  | 
1190  | 0  | }  | 
1191  |  |  | 
1192  |  | #ifdef Py_DEBUG  | 
1193  |  | static int  | 
1194  |  | hamt_node_bitmap_dump(PyHamtNode_Bitmap *node,  | 
1195  |  |                       _PyUnicodeWriter *writer, int level)  | 
1196  |  | { | 
1197  |  |     /* Debug build: __dump__() method implementation for Bitmap nodes. */  | 
1198  |  |  | 
1199  |  |     Py_ssize_t i;  | 
1200  |  |     PyObject *tmp1;  | 
1201  |  |     PyObject *tmp2;  | 
1202  |  |  | 
1203  |  |     if (_hamt_dump_ident(writer, level + 1)) { | 
1204  |  |         goto error;  | 
1205  |  |     }  | 
1206  |  |  | 
1207  |  |     if (_hamt_dump_format(writer, "BitmapNode(size=%zd count=%zd ",  | 
1208  |  |                           Py_SIZE(node), Py_SIZE(node) / 2))  | 
1209  |  |     { | 
1210  |  |         goto error;  | 
1211  |  |     }  | 
1212  |  |  | 
1213  |  |     tmp1 = PyLong_FromUnsignedLong(node->b_bitmap);  | 
1214  |  |     if (tmp1 == NULL) { | 
1215  |  |         goto error;  | 
1216  |  |     }  | 
1217  |  |     tmp2 = _PyLong_Format(tmp1, 2);  | 
1218  |  |     Py_DECREF(tmp1);  | 
1219  |  |     if (tmp2 == NULL) { | 
1220  |  |         goto error;  | 
1221  |  |     }  | 
1222  |  |     if (_hamt_dump_format(writer, "bitmap=%S id=%p):\n", tmp2, node)) { | 
1223  |  |         Py_DECREF(tmp2);  | 
1224  |  |         goto error;  | 
1225  |  |     }  | 
1226  |  |     Py_DECREF(tmp2);  | 
1227  |  |  | 
1228  |  |     for (i = 0; i < Py_SIZE(node); i += 2) { | 
1229  |  |         PyObject *key_or_null = node->b_array[i];  | 
1230  |  |         PyObject *val_or_node = node->b_array[i + 1];  | 
1231  |  |  | 
1232  |  |         if (_hamt_dump_ident(writer, level + 2)) { | 
1233  |  |             goto error;  | 
1234  |  |         }  | 
1235  |  |  | 
1236  |  |         if (key_or_null == NULL) { | 
1237  |  |             if (_hamt_dump_format(writer, "NULL:\n")) { | 
1238  |  |                 goto error;  | 
1239  |  |             }  | 
1240  |  |  | 
1241  |  |             if (hamt_node_dump((PyHamtNode *)val_or_node,  | 
1242  |  |                                writer, level + 2))  | 
1243  |  |             { | 
1244  |  |                 goto error;  | 
1245  |  |             }  | 
1246  |  |         }  | 
1247  |  |         else { | 
1248  |  |             if (_hamt_dump_format(writer, "%R: %R", key_or_null,  | 
1249  |  |                                   val_or_node))  | 
1250  |  |             { | 
1251  |  |                 goto error;  | 
1252  |  |             }  | 
1253  |  |         }  | 
1254  |  |  | 
1255  |  |         if (_hamt_dump_format(writer, "\n")) { | 
1256  |  |             goto error;  | 
1257  |  |         }  | 
1258  |  |     }  | 
1259  |  |  | 
1260  |  |     return 0;  | 
1261  |  | error:  | 
1262  |  |     return -1;  | 
1263  |  | }  | 
1264  |  | #endif  /* Py_DEBUG */  | 
1265  |  |  | 
1266  |  |  | 
1267  |  | /////////////////////////////////// Collision Node  | 
1268  |  |  | 
1269  |  |  | 
1270  |  | static PyHamtNode *  | 
1271  |  | hamt_node_collision_new(int32_t hash, Py_ssize_t size)  | 
1272  | 0  | { | 
1273  |  |     /* Create a new Collision node. */  | 
1274  |  | 
  | 
1275  | 0  |     PyHamtNode_Collision *node;  | 
1276  | 0  |     Py_ssize_t i;  | 
1277  |  | 
  | 
1278  | 0  |     assert(size >= 4);  | 
1279  | 0  |     assert(size % 2 == 0);  | 
1280  |  | 
  | 
1281  | 0  |     node = PyObject_GC_NewVar(  | 
1282  | 0  |         PyHamtNode_Collision, &_PyHamt_CollisionNode_Type, size);  | 
1283  | 0  |     if (node == NULL) { | 
1284  | 0  |         return NULL;  | 
1285  | 0  |     }  | 
1286  |  |  | 
1287  | 0  |     for (i = 0; i < size; i++) { | 
1288  | 0  |         node->c_array[i] = NULL;  | 
1289  | 0  |     }  | 
1290  |  | 
  | 
1291  | 0  |     Py_SIZE(node) = size;  | 
1292  | 0  |     node->c_hash = hash;  | 
1293  |  | 
  | 
1294  | 0  |     _PyObject_GC_TRACK(node);  | 
1295  |  | 
  | 
1296  | 0  |     return (PyHamtNode *)node;  | 
1297  | 0  | }  | 
1298  |  |  | 
1299  |  | static hamt_find_t  | 
1300  |  | hamt_node_collision_find_index(PyHamtNode_Collision *self, PyObject *key,  | 
1301  |  |                                Py_ssize_t *idx)  | 
1302  | 0  | { | 
1303  |  |     /* Lookup `key` in the Collision node `self`.  Set the index of the  | 
1304  |  |        found key to 'idx'. */  | 
1305  |  | 
  | 
1306  | 0  |     Py_ssize_t i;  | 
1307  | 0  |     PyObject *el;  | 
1308  |  | 
  | 
1309  | 0  |     for (i = 0; i < Py_SIZE(self); i += 2) { | 
1310  | 0  |         el = self->c_array[i];  | 
1311  |  | 
  | 
1312  | 0  |         assert(el != NULL);  | 
1313  | 0  |         int cmp = PyObject_RichCompareBool(key, el, Py_EQ);  | 
1314  | 0  |         if (cmp < 0) { | 
1315  | 0  |             return F_ERROR;  | 
1316  | 0  |         }  | 
1317  | 0  |         if (cmp == 1) { | 
1318  | 0  |             *idx = i;  | 
1319  | 0  |             return F_FOUND;  | 
1320  | 0  |         }  | 
1321  | 0  |     }  | 
1322  |  |  | 
1323  | 0  |     return F_NOT_FOUND;  | 
1324  | 0  | }  | 
1325  |  |  | 
1326  |  | static PyHamtNode *  | 
1327  |  | hamt_node_collision_assoc(PyHamtNode_Collision *self,  | 
1328  |  |                           uint32_t shift, int32_t hash,  | 
1329  |  |                           PyObject *key, PyObject *val, int* added_leaf)  | 
1330  | 0  | { | 
1331  |  |     /* Set a new key to this level (currently a Collision node)  | 
1332  |  |        of the tree. */  | 
1333  |  | 
  | 
1334  | 0  |     if (hash == self->c_hash) { | 
1335  |  |         /* The hash of the 'key' we are adding matches the hash of  | 
1336  |  |            other keys in this Collision node. */  | 
1337  |  | 
  | 
1338  | 0  |         Py_ssize_t key_idx = -1;  | 
1339  | 0  |         hamt_find_t found;  | 
1340  | 0  |         PyHamtNode_Collision *new_node;  | 
1341  | 0  |         Py_ssize_t i;  | 
1342  |  |  | 
1343  |  |         /* Let's try to lookup the new 'key', maybe we already have it. */  | 
1344  | 0  |         found = hamt_node_collision_find_index(self, key, &key_idx);  | 
1345  | 0  |         switch (found) { | 
1346  | 0  |             case F_ERROR:  | 
1347  |  |                 /* Exception. */  | 
1348  | 0  |                 return NULL;  | 
1349  |  |  | 
1350  | 0  |             case F_NOT_FOUND:  | 
1351  |  |                 /* This is a totally new key.  Clone the current node,  | 
1352  |  |                    add a new key/value to the cloned node. */  | 
1353  |  | 
  | 
1354  | 0  |                 new_node = (PyHamtNode_Collision *)hamt_node_collision_new(  | 
1355  | 0  |                     self->c_hash, Py_SIZE(self) + 2);  | 
1356  | 0  |                 if (new_node == NULL) { | 
1357  | 0  |                     return NULL;  | 
1358  | 0  |                 }  | 
1359  |  |  | 
1360  | 0  |                 for (i = 0; i < Py_SIZE(self); i++) { | 
1361  | 0  |                     Py_INCREF(self->c_array[i]);  | 
1362  | 0  |                     new_node->c_array[i] = self->c_array[i];  | 
1363  | 0  |                 }  | 
1364  |  | 
  | 
1365  | 0  |                 Py_INCREF(key);  | 
1366  | 0  |                 new_node->c_array[i] = key;  | 
1367  | 0  |                 Py_INCREF(val);  | 
1368  | 0  |                 new_node->c_array[i + 1] = val;  | 
1369  |  | 
  | 
1370  | 0  |                 *added_leaf = 1;  | 
1371  | 0  |                 return (PyHamtNode *)new_node;  | 
1372  |  |  | 
1373  | 0  |             case F_FOUND:  | 
1374  |  |                 /* There's a key which is equal to the key we are adding. */  | 
1375  |  | 
  | 
1376  | 0  |                 assert(key_idx >= 0);  | 
1377  | 0  |                 assert(key_idx < Py_SIZE(self));  | 
1378  | 0  |                 Py_ssize_t val_idx = key_idx + 1;  | 
1379  |  | 
  | 
1380  | 0  |                 if (self->c_array[val_idx] == val) { | 
1381  |  |                     /* We're setting a key/value pair that's already set. */  | 
1382  | 0  |                     Py_INCREF(self);  | 
1383  | 0  |                     return (PyHamtNode *)self;  | 
1384  | 0  |                 }  | 
1385  |  |  | 
1386  |  |                 /* We need to replace old value for the key  | 
1387  |  |                    with a new value.  Create a new Collision node.*/  | 
1388  | 0  |                 new_node = (PyHamtNode_Collision *)hamt_node_collision_new(  | 
1389  | 0  |                     self->c_hash, Py_SIZE(self));  | 
1390  | 0  |                 if (new_node == NULL) { | 
1391  | 0  |                     return NULL;  | 
1392  | 0  |                 }  | 
1393  |  |  | 
1394  |  |                 /* Copy all elements of the old node to the new one. */  | 
1395  | 0  |                 for (i = 0; i < Py_SIZE(self); i++) { | 
1396  | 0  |                     Py_INCREF(self->c_array[i]);  | 
1397  | 0  |                     new_node->c_array[i] = self->c_array[i];  | 
1398  | 0  |                 }  | 
1399  |  |  | 
1400  |  |                 /* Replace the old value with the new value for the our key. */  | 
1401  | 0  |                 Py_DECREF(new_node->c_array[val_idx]);  | 
1402  | 0  |                 Py_INCREF(val);  | 
1403  | 0  |                 new_node->c_array[val_idx] = val;  | 
1404  |  | 
  | 
1405  | 0  |                 return (PyHamtNode *)new_node;  | 
1406  |  |  | 
1407  | 0  |             default:  | 
1408  | 0  |                 Py_UNREACHABLE();  | 
1409  | 0  |         }  | 
1410  | 0  |     }  | 
1411  | 0  |     else { | 
1412  |  |         /* The hash of the new key is different from the hash that  | 
1413  |  |            all keys of this Collision node have.  | 
1414  |  |  | 
1415  |  |            Create a Bitmap node inplace with two children:  | 
1416  |  |            key/value pair that we're adding, and the Collision node  | 
1417  |  |            we're replacing on this tree level.  | 
1418  |  |         */  | 
1419  |  | 
  | 
1420  | 0  |         PyHamtNode_Bitmap *new_node;  | 
1421  | 0  |         PyHamtNode *assoc_res;  | 
1422  |  | 
  | 
1423  | 0  |         new_node = (PyHamtNode_Bitmap *)hamt_node_bitmap_new(2);  | 
1424  | 0  |         if (new_node == NULL) { | 
1425  | 0  |             return NULL;  | 
1426  | 0  |         }  | 
1427  | 0  |         new_node->b_bitmap = hamt_bitpos(self->c_hash, shift);  | 
1428  | 0  |         Py_INCREF(self);  | 
1429  | 0  |         new_node->b_array[1] = (PyObject*) self;  | 
1430  |  | 
  | 
1431  | 0  |         assoc_res = hamt_node_bitmap_assoc(  | 
1432  | 0  |             new_node, shift, hash, key, val, added_leaf);  | 
1433  | 0  |         Py_DECREF(new_node);  | 
1434  | 0  |         return assoc_res;  | 
1435  | 0  |     }  | 
1436  | 0  | }  | 
1437  |  |  | 
1438  |  | static inline Py_ssize_t  | 
1439  |  | hamt_node_collision_count(PyHamtNode_Collision *node)  | 
1440  | 0  | { | 
1441  | 0  |     return Py_SIZE(node) / 2;  | 
1442  | 0  | }  | 
1443  |  |  | 
1444  |  | static hamt_without_t  | 
1445  |  | hamt_node_collision_without(PyHamtNode_Collision *self,  | 
1446  |  |                             uint32_t shift, int32_t hash,  | 
1447  |  |                             PyObject *key,  | 
1448  |  |                             PyHamtNode **new_node)  | 
1449  | 0  | { | 
1450  | 0  |     if (hash != self->c_hash) { | 
1451  | 0  |         return W_NOT_FOUND;  | 
1452  | 0  |     }  | 
1453  |  |  | 
1454  | 0  |     Py_ssize_t key_idx = -1;  | 
1455  | 0  |     hamt_find_t found = hamt_node_collision_find_index(self, key, &key_idx);  | 
1456  |  | 
  | 
1457  | 0  |     switch (found) { | 
1458  | 0  |         case F_ERROR:  | 
1459  | 0  |             return W_ERROR;  | 
1460  |  |  | 
1461  | 0  |         case F_NOT_FOUND:  | 
1462  | 0  |             return W_NOT_FOUND;  | 
1463  |  |  | 
1464  | 0  |         case F_FOUND:  | 
1465  | 0  |             assert(key_idx >= 0);  | 
1466  | 0  |             assert(key_idx < Py_SIZE(self));  | 
1467  |  | 
  | 
1468  | 0  |             Py_ssize_t new_count = hamt_node_collision_count(self) - 1;  | 
1469  |  | 
  | 
1470  | 0  |             if (new_count == 0) { | 
1471  |  |                 /* The node has only one key/value pair and it's for the  | 
1472  |  |                    key we're trying to delete.  So a new node will be empty  | 
1473  |  |                    after the removal.  | 
1474  |  |                 */  | 
1475  | 0  |                 return W_EMPTY;  | 
1476  | 0  |             }  | 
1477  |  |  | 
1478  | 0  |             if (new_count == 1) { | 
1479  |  |                 /* The node has two keys, and after deletion the  | 
1480  |  |                    new Collision node would have one.  Collision nodes  | 
1481  |  |                    with one key shouldn't exist, so convert it to a  | 
1482  |  |                    Bitmap node.  | 
1483  |  |                 */  | 
1484  | 0  |                 PyHamtNode_Bitmap *node = (PyHamtNode_Bitmap *)  | 
1485  | 0  |                     hamt_node_bitmap_new(2);  | 
1486  | 0  |                 if (node == NULL) { | 
1487  | 0  |                     return W_ERROR;  | 
1488  | 0  |                 }  | 
1489  |  |  | 
1490  | 0  |                 if (key_idx == 0) { | 
1491  | 0  |                     Py_INCREF(self->c_array[2]);  | 
1492  | 0  |                     node->b_array[0] = self->c_array[2];  | 
1493  | 0  |                     Py_INCREF(self->c_array[3]);  | 
1494  | 0  |                     node->b_array[1] = self->c_array[3];  | 
1495  | 0  |                 }  | 
1496  | 0  |                 else { | 
1497  | 0  |                     assert(key_idx == 2);  | 
1498  | 0  |                     Py_INCREF(self->c_array[0]);  | 
1499  | 0  |                     node->b_array[0] = self->c_array[0];  | 
1500  | 0  |                     Py_INCREF(self->c_array[1]);  | 
1501  | 0  |                     node->b_array[1] = self->c_array[1];  | 
1502  | 0  |                 }  | 
1503  |  | 
  | 
1504  | 0  |                 node->b_bitmap = hamt_bitpos(hash, shift);  | 
1505  |  | 
  | 
1506  | 0  |                 *new_node = (PyHamtNode *)node;  | 
1507  | 0  |                 return W_NEWNODE;  | 
1508  | 0  |             }  | 
1509  |  |  | 
1510  |  |             /* Allocate a new Collision node with capacity for one  | 
1511  |  |                less key/value pair */  | 
1512  | 0  |             PyHamtNode_Collision *new = (PyHamtNode_Collision *)  | 
1513  | 0  |                 hamt_node_collision_new(  | 
1514  | 0  |                     self->c_hash, Py_SIZE(self) - 2);  | 
1515  | 0  |             if (new == NULL) { | 
1516  | 0  |                 return W_ERROR;  | 
1517  | 0  |             }  | 
1518  |  |  | 
1519  |  |             /* Copy all other keys from `self` to `new` */  | 
1520  | 0  |             Py_ssize_t i;  | 
1521  | 0  |             for (i = 0; i < key_idx; i++) { | 
1522  | 0  |                 Py_INCREF(self->c_array[i]);  | 
1523  | 0  |                 new->c_array[i] = self->c_array[i];  | 
1524  | 0  |             }  | 
1525  | 0  |             for (i = key_idx + 2; i < Py_SIZE(self); i++) { | 
1526  | 0  |                 Py_INCREF(self->c_array[i]);  | 
1527  | 0  |                 new->c_array[i - 2] = self->c_array[i];  | 
1528  | 0  |             }  | 
1529  |  | 
  | 
1530  | 0  |             *new_node = (PyHamtNode*)new;  | 
1531  | 0  |             return W_NEWNODE;  | 
1532  |  |  | 
1533  | 0  |         default:  | 
1534  | 0  |             Py_UNREACHABLE();  | 
1535  | 0  |     }  | 
1536  | 0  | }  | 
1537  |  |  | 
1538  |  | static hamt_find_t  | 
1539  |  | hamt_node_collision_find(PyHamtNode_Collision *self,  | 
1540  |  |                          uint32_t shift, int32_t hash,  | 
1541  |  |                          PyObject *key, PyObject **val)  | 
1542  | 0  | { | 
1543  |  |     /* Lookup `key` in the Collision node `self`.  Set the value  | 
1544  |  |        for the found key to 'val'. */  | 
1545  |  | 
  | 
1546  | 0  |     Py_ssize_t idx = -1;  | 
1547  | 0  |     hamt_find_t res;  | 
1548  |  | 
  | 
1549  | 0  |     res = hamt_node_collision_find_index(self, key, &idx);  | 
1550  | 0  |     if (res == F_ERROR || res == F_NOT_FOUND) { | 
1551  | 0  |         return res;  | 
1552  | 0  |     }  | 
1553  |  |  | 
1554  | 0  |     assert(idx >= 0);  | 
1555  | 0  |     assert(idx + 1 < Py_SIZE(self));  | 
1556  |  | 
  | 
1557  | 0  |     *val = self->c_array[idx + 1];  | 
1558  | 0  |     assert(*val != NULL);  | 
1559  |  | 
  | 
1560  | 0  |     return F_FOUND;  | 
1561  | 0  | }  | 
1562  |  |  | 
1563  |  |  | 
1564  |  | static int  | 
1565  |  | hamt_node_collision_traverse(PyHamtNode_Collision *self,  | 
1566  |  |                              visitproc visit, void *arg)  | 
1567  | 0  | { | 
1568  |  |     /* Collision's tp_traverse */  | 
1569  |  | 
  | 
1570  | 0  |     Py_ssize_t i;  | 
1571  |  | 
  | 
1572  | 0  |     for (i = Py_SIZE(self); --i >= 0; ) { | 
1573  | 0  |         Py_VISIT(self->c_array[i]);  | 
1574  | 0  |     }  | 
1575  |  |  | 
1576  | 0  |     return 0;  | 
1577  | 0  | }  | 
1578  |  |  | 
1579  |  | static void  | 
1580  |  | hamt_node_collision_dealloc(PyHamtNode_Collision *self)  | 
1581  | 0  | { | 
1582  |  |     /* Collision's tp_dealloc */  | 
1583  |  | 
  | 
1584  | 0  |     Py_ssize_t len = Py_SIZE(self);  | 
1585  |  | 
  | 
1586  | 0  |     PyObject_GC_UnTrack(self);  | 
1587  | 0  |     Py_TRASHCAN_BEGIN(self, hamt_node_collision_dealloc)  | 
1588  |  |  | 
1589  | 0  |     if (len > 0) { | 
1590  |  | 
  | 
1591  | 0  |         while (--len >= 0) { | 
1592  | 0  |             Py_XDECREF(self->c_array[len]);  | 
1593  | 0  |         }  | 
1594  | 0  |     }  | 
1595  |  | 
  | 
1596  | 0  |     Py_TYPE(self)->tp_free((PyObject *)self);  | 
1597  | 0  |     Py_TRASHCAN_END  | 
1598  | 0  | }  | 
1599  |  |  | 
1600  |  | #ifdef Py_DEBUG  | 
1601  |  | static int  | 
1602  |  | hamt_node_collision_dump(PyHamtNode_Collision *node,  | 
1603  |  |                          _PyUnicodeWriter *writer, int level)  | 
1604  |  | { | 
1605  |  |     /* Debug build: __dump__() method implementation for Collision nodes. */  | 
1606  |  |  | 
1607  |  |     Py_ssize_t i;  | 
1608  |  |  | 
1609  |  |     if (_hamt_dump_ident(writer, level + 1)) { | 
1610  |  |         goto error;  | 
1611  |  |     }  | 
1612  |  |  | 
1613  |  |     if (_hamt_dump_format(writer, "CollisionNode(size=%zd id=%p):\n",  | 
1614  |  |                           Py_SIZE(node), node))  | 
1615  |  |     { | 
1616  |  |         goto error;  | 
1617  |  |     }  | 
1618  |  |  | 
1619  |  |     for (i = 0; i < Py_SIZE(node); i += 2) { | 
1620  |  |         PyObject *key = node->c_array[i];  | 
1621  |  |         PyObject *val = node->c_array[i + 1];  | 
1622  |  |  | 
1623  |  |         if (_hamt_dump_ident(writer, level + 2)) { | 
1624  |  |             goto error;  | 
1625  |  |         }  | 
1626  |  |  | 
1627  |  |         if (_hamt_dump_format(writer, "%R: %R\n", key, val)) { | 
1628  |  |             goto error;  | 
1629  |  |         }  | 
1630  |  |     }  | 
1631  |  |  | 
1632  |  |     return 0;  | 
1633  |  | error:  | 
1634  |  |     return -1;  | 
1635  |  | }  | 
1636  |  | #endif  /* Py_DEBUG */  | 
1637  |  |  | 
1638  |  |  | 
1639  |  | /////////////////////////////////// Array Node  | 
1640  |  |  | 
1641  |  |  | 
1642  |  | static PyHamtNode *  | 
1643  |  | hamt_node_array_new(Py_ssize_t count)  | 
1644  | 0  | { | 
1645  | 0  |     Py_ssize_t i;  | 
1646  |  | 
  | 
1647  | 0  |     PyHamtNode_Array *node = PyObject_GC_New(  | 
1648  | 0  |         PyHamtNode_Array, &_PyHamt_ArrayNode_Type);  | 
1649  | 0  |     if (node == NULL) { | 
1650  | 0  |         return NULL;  | 
1651  | 0  |     }  | 
1652  |  |  | 
1653  | 0  |     for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1654  | 0  |         node->a_array[i] = NULL;  | 
1655  | 0  |     }  | 
1656  |  | 
  | 
1657  | 0  |     node->a_count = count;  | 
1658  |  | 
  | 
1659  | 0  |     _PyObject_GC_TRACK(node);  | 
1660  | 0  |     return (PyHamtNode *)node;  | 
1661  | 0  | }  | 
1662  |  |  | 
1663  |  | static PyHamtNode_Array *  | 
1664  |  | hamt_node_array_clone(PyHamtNode_Array *node)  | 
1665  | 0  | { | 
1666  | 0  |     PyHamtNode_Array *clone;  | 
1667  | 0  |     Py_ssize_t i;  | 
1668  |  | 
  | 
1669  | 0  |     VALIDATE_ARRAY_NODE(node)  | 
1670  |  |  | 
1671  |  |     /* Create a new Array node. */  | 
1672  | 0  |     clone = (PyHamtNode_Array *)hamt_node_array_new(node->a_count);  | 
1673  | 0  |     if (clone == NULL) { | 
1674  | 0  |         return NULL;  | 
1675  | 0  |     }  | 
1676  |  |  | 
1677  |  |     /* Copy all elements from the current Array node to the new one. */  | 
1678  | 0  |     for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1679  | 0  |         Py_XINCREF(node->a_array[i]);  | 
1680  | 0  |         clone->a_array[i] = node->a_array[i];  | 
1681  | 0  |     }  | 
1682  |  | 
  | 
1683  | 0  |     VALIDATE_ARRAY_NODE(clone)  | 
1684  | 0  |     return clone;  | 
1685  | 0  | }  | 
1686  |  |  | 
1687  |  | static PyHamtNode *  | 
1688  |  | hamt_node_array_assoc(PyHamtNode_Array *self,  | 
1689  |  |                       uint32_t shift, int32_t hash,  | 
1690  |  |                       PyObject *key, PyObject *val, int* added_leaf)  | 
1691  | 0  | { | 
1692  |  |     /* Set a new key to this level (currently a Collision node)  | 
1693  |  |        of the tree.  | 
1694  |  |  | 
1695  |  |        Array nodes don't store values, they can only point to  | 
1696  |  |        other nodes.  They are simple arrays of 32 BaseNode pointers/  | 
1697  |  |      */  | 
1698  |  | 
  | 
1699  | 0  |     uint32_t idx = hamt_mask(hash, shift);  | 
1700  | 0  |     PyHamtNode *node = self->a_array[idx];  | 
1701  | 0  |     PyHamtNode *child_node;  | 
1702  | 0  |     PyHamtNode_Array *new_node;  | 
1703  | 0  |     Py_ssize_t i;  | 
1704  |  | 
  | 
1705  | 0  |     if (node == NULL) { | 
1706  |  |         /* There's no child node for the given hash.  Create a new  | 
1707  |  |            Bitmap node for this key. */  | 
1708  |  | 
  | 
1709  | 0  |         PyHamtNode_Bitmap *empty = NULL;  | 
1710  |  |  | 
1711  |  |         /* Get an empty Bitmap node to work with. */  | 
1712  | 0  |         empty = (PyHamtNode_Bitmap *)hamt_node_bitmap_new(0);  | 
1713  | 0  |         if (empty == NULL) { | 
1714  | 0  |             return NULL;  | 
1715  | 0  |         }  | 
1716  |  |  | 
1717  |  |         /* Set key/val to the newly created empty Bitmap, thus  | 
1718  |  |            creating a new Bitmap node with our key/value pair. */  | 
1719  | 0  |         child_node = hamt_node_bitmap_assoc(  | 
1720  | 0  |             empty,  | 
1721  | 0  |             shift + 5, hash, key, val, added_leaf);  | 
1722  | 0  |         Py_DECREF(empty);  | 
1723  | 0  |         if (child_node == NULL) { | 
1724  | 0  |             return NULL;  | 
1725  | 0  |         }  | 
1726  |  |  | 
1727  |  |         /* Create a new Array node. */  | 
1728  | 0  |         new_node = (PyHamtNode_Array *)hamt_node_array_new(self->a_count + 1);  | 
1729  | 0  |         if (new_node == NULL) { | 
1730  | 0  |             Py_DECREF(child_node);  | 
1731  | 0  |             return NULL;  | 
1732  | 0  |         }  | 
1733  |  |  | 
1734  |  |         /* Copy all elements from the current Array node to the  | 
1735  |  |            new one. */  | 
1736  | 0  |         for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1737  | 0  |             Py_XINCREF(self->a_array[i]);  | 
1738  | 0  |             new_node->a_array[i] = self->a_array[i];  | 
1739  | 0  |         }  | 
1740  |  | 
  | 
1741  | 0  |         assert(new_node->a_array[idx] == NULL);  | 
1742  | 0  |         new_node->a_array[idx] = child_node;  /* borrow */  | 
1743  | 0  |         VALIDATE_ARRAY_NODE(new_node)  | 
1744  | 0  |     }  | 
1745  | 0  |     else { | 
1746  |  |         /* There's a child node for the given hash.  | 
1747  |  |            Set the key to it./ */  | 
1748  | 0  |         child_node = hamt_node_assoc(  | 
1749  | 0  |             node, shift + 5, hash, key, val, added_leaf);  | 
1750  | 0  |         if (child_node == NULL) { | 
1751  | 0  |             return NULL;  | 
1752  | 0  |         }  | 
1753  | 0  |         else if (child_node == (PyHamtNode *)self) { | 
1754  | 0  |             Py_DECREF(child_node);  | 
1755  | 0  |             return (PyHamtNode *)self;  | 
1756  | 0  |         }  | 
1757  |  |  | 
1758  | 0  |         new_node = hamt_node_array_clone(self);  | 
1759  | 0  |         if (new_node == NULL) { | 
1760  | 0  |             Py_DECREF(child_node);  | 
1761  | 0  |             return NULL;  | 
1762  | 0  |         }  | 
1763  |  |  | 
1764  | 0  |         Py_SETREF(new_node->a_array[idx], child_node);  /* borrow */  | 
1765  | 0  |         VALIDATE_ARRAY_NODE(new_node)  | 
1766  | 0  |     }  | 
1767  |  |  | 
1768  | 0  |     return (PyHamtNode *)new_node;  | 
1769  | 0  | }  | 
1770  |  |  | 
1771  |  | static hamt_without_t  | 
1772  |  | hamt_node_array_without(PyHamtNode_Array *self,  | 
1773  |  |                         uint32_t shift, int32_t hash,  | 
1774  |  |                         PyObject *key,  | 
1775  |  |                         PyHamtNode **new_node)  | 
1776  | 0  | { | 
1777  | 0  |     uint32_t idx = hamt_mask(hash, shift);  | 
1778  | 0  |     PyHamtNode *node = self->a_array[idx];  | 
1779  |  | 
  | 
1780  | 0  |     if (node == NULL) { | 
1781  | 0  |         return W_NOT_FOUND;  | 
1782  | 0  |     }  | 
1783  |  |  | 
1784  | 0  |     PyHamtNode *sub_node = NULL;  | 
1785  | 0  |     hamt_without_t res = hamt_node_without(  | 
1786  | 0  |         (PyHamtNode *)node,  | 
1787  | 0  |         shift + 5, hash, key, &sub_node);  | 
1788  |  | 
  | 
1789  | 0  |     switch (res) { | 
1790  | 0  |         case W_NOT_FOUND:  | 
1791  | 0  |         case W_ERROR:  | 
1792  | 0  |             assert(sub_node == NULL);  | 
1793  | 0  |             return res;  | 
1794  |  |  | 
1795  | 0  |         case W_NEWNODE: { | 
1796  |  |             /* We need to replace a node at the `idx` index.  | 
1797  |  |                Clone this node and replace.  | 
1798  |  |             */  | 
1799  | 0  |             assert(sub_node != NULL);  | 
1800  |  | 
  | 
1801  | 0  |             PyHamtNode_Array *clone = hamt_node_array_clone(self);  | 
1802  | 0  |             if (clone == NULL) { | 
1803  | 0  |                 Py_DECREF(sub_node);  | 
1804  | 0  |                 return W_ERROR;  | 
1805  | 0  |             }  | 
1806  |  |  | 
1807  | 0  |             Py_SETREF(clone->a_array[idx], sub_node);  /* borrow */  | 
1808  | 0  |             *new_node = (PyHamtNode*)clone;  /* borrow */  | 
1809  | 0  |             return W_NEWNODE;  | 
1810  | 0  |         }  | 
1811  |  |  | 
1812  | 0  |         case W_EMPTY: { | 
1813  | 0  |             assert(sub_node == NULL);  | 
1814  |  |             /* We need to remove a node at the `idx` index.  | 
1815  |  |                Calculate the size of the replacement Array node.  | 
1816  |  |             */  | 
1817  | 0  |             Py_ssize_t new_count = self->a_count - 1;  | 
1818  |  | 
  | 
1819  | 0  |             if (new_count == 0) { | 
1820  | 0  |                 return W_EMPTY;  | 
1821  | 0  |             }  | 
1822  |  |  | 
1823  | 0  |             if (new_count >= 16) { | 
1824  |  |                 /* We convert Bitmap nodes to Array nodes, when a  | 
1825  |  |                    Bitmap node needs to store more than 15 key/value  | 
1826  |  |                    pairs.  So we will create a new Array node if we  | 
1827  |  |                    the number of key/values after deletion is still  | 
1828  |  |                    greater than 15.  | 
1829  |  |                 */  | 
1830  |  | 
  | 
1831  | 0  |                 PyHamtNode_Array *new = hamt_node_array_clone(self);  | 
1832  | 0  |                 if (new == NULL) { | 
1833  | 0  |                     return W_ERROR;  | 
1834  | 0  |                 }  | 
1835  | 0  |                 new->a_count = new_count;  | 
1836  | 0  |                 Py_CLEAR(new->a_array[idx]);  | 
1837  |  | 
  | 
1838  | 0  |                 *new_node = (PyHamtNode*)new;  /* borrow */  | 
1839  | 0  |                 return W_NEWNODE;  | 
1840  | 0  |             }  | 
1841  |  |  | 
1842  |  |             /* New Array node would have less than 16 key/value  | 
1843  |  |                pairs.  We need to create a replacement Bitmap node. */  | 
1844  |  |  | 
1845  | 0  |             Py_ssize_t bitmap_size = new_count * 2;  | 
1846  | 0  |             uint32_t bitmap = 0;  | 
1847  |  | 
  | 
1848  | 0  |             PyHamtNode_Bitmap *new = (PyHamtNode_Bitmap *)  | 
1849  | 0  |                 hamt_node_bitmap_new(bitmap_size);  | 
1850  | 0  |             if (new == NULL) { | 
1851  | 0  |                 return W_ERROR;  | 
1852  | 0  |             }  | 
1853  |  |  | 
1854  | 0  |             Py_ssize_t new_i = 0;  | 
1855  | 0  |             for (uint32_t i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1856  | 0  |                 if (i == idx) { | 
1857  |  |                     /* Skip the node we are deleting. */  | 
1858  | 0  |                     continue;  | 
1859  | 0  |                 }  | 
1860  |  |  | 
1861  | 0  |                 PyHamtNode *node = self->a_array[i];  | 
1862  | 0  |                 if (node == NULL) { | 
1863  |  |                     /* Skip any missing nodes. */  | 
1864  | 0  |                     continue;  | 
1865  | 0  |                 }  | 
1866  |  |  | 
1867  | 0  |                 bitmap |= 1U << i;  | 
1868  |  | 
  | 
1869  | 0  |                 if (IS_BITMAP_NODE(node)) { | 
1870  | 0  |                     PyHamtNode_Bitmap *child = (PyHamtNode_Bitmap *)node;  | 
1871  |  | 
  | 
1872  | 0  |                     if (hamt_node_bitmap_count(child) == 1 &&  | 
1873  | 0  |                             child->b_array[0] != NULL)  | 
1874  | 0  |                     { | 
1875  |  |                         /* node is a Bitmap with one key/value pair, just  | 
1876  |  |                            merge it into the new Bitmap node we're building.  | 
1877  |  |  | 
1878  |  |                            Note that we don't inline Bitmap nodes that  | 
1879  |  |                            have a NULL key -- those nodes point to another  | 
1880  |  |                            tree level, and we cannot simply move tree levels  | 
1881  |  |                            up or down.  | 
1882  |  |                         */  | 
1883  | 0  |                         PyObject *key = child->b_array[0];  | 
1884  | 0  |                         PyObject *val = child->b_array[1];  | 
1885  |  | 
  | 
1886  | 0  |                         Py_INCREF(key);  | 
1887  | 0  |                         new->b_array[new_i] = key;  | 
1888  | 0  |                         Py_INCREF(val);  | 
1889  | 0  |                         new->b_array[new_i + 1] = val;  | 
1890  | 0  |                     }  | 
1891  | 0  |                     else { | 
1892  | 0  |                         new->b_array[new_i] = NULL;  | 
1893  | 0  |                         Py_INCREF(node);  | 
1894  | 0  |                         new->b_array[new_i + 1] = (PyObject*)node;  | 
1895  | 0  |                     }  | 
1896  | 0  |                 }  | 
1897  | 0  |                 else { | 
1898  |  | 
  | 
1899  |  | #ifdef Py_DEBUG  | 
1900  |  |                     if (IS_COLLISION_NODE(node)) { | 
1901  |  |                         Py_ssize_t child_count = hamt_node_collision_count(  | 
1902  |  |                             (PyHamtNode_Collision*)node);  | 
1903  |  |                         assert(child_count > 1);  | 
1904  |  |                     }  | 
1905  |  |                     else if (IS_ARRAY_NODE(node)) { | 
1906  |  |                         assert(((PyHamtNode_Array*)node)->a_count >= 16);  | 
1907  |  |                     }  | 
1908  |  | #endif  | 
1909  |  |  | 
1910  |  |                     /* Just copy the node into our new Bitmap */  | 
1911  | 0  |                     new->b_array[new_i] = NULL;  | 
1912  | 0  |                     Py_INCREF(node);  | 
1913  | 0  |                     new->b_array[new_i + 1] = (PyObject*)node;  | 
1914  | 0  |                 }  | 
1915  |  | 
  | 
1916  | 0  |                 new_i += 2;  | 
1917  | 0  |             }  | 
1918  |  | 
  | 
1919  | 0  |             new->b_bitmap = bitmap;  | 
1920  | 0  |             *new_node = (PyHamtNode*)new;  /* borrow */  | 
1921  | 0  |             return W_NEWNODE;  | 
1922  | 0  |         }  | 
1923  |  |  | 
1924  | 0  |         default:  | 
1925  | 0  |             Py_UNREACHABLE();  | 
1926  | 0  |     }  | 
1927  | 0  | }  | 
1928  |  |  | 
1929  |  | static hamt_find_t  | 
1930  |  | hamt_node_array_find(PyHamtNode_Array *self,  | 
1931  |  |                      uint32_t shift, int32_t hash,  | 
1932  |  |                      PyObject *key, PyObject **val)  | 
1933  | 0  | { | 
1934  |  |     /* Lookup `key` in the Array node `self`.  Set the value  | 
1935  |  |        for the found key to 'val'. */  | 
1936  |  | 
  | 
1937  | 0  |     uint32_t idx = hamt_mask(hash, shift);  | 
1938  | 0  |     PyHamtNode *node;  | 
1939  |  | 
  | 
1940  | 0  |     node = self->a_array[idx];  | 
1941  | 0  |     if (node == NULL) { | 
1942  | 0  |         return F_NOT_FOUND;  | 
1943  | 0  |     }  | 
1944  |  |  | 
1945  |  |     /* Dispatch to the generic hamt_node_find */  | 
1946  | 0  |     return hamt_node_find(node, shift + 5, hash, key, val);  | 
1947  | 0  | }  | 
1948  |  |  | 
1949  |  | static int  | 
1950  |  | hamt_node_array_traverse(PyHamtNode_Array *self,  | 
1951  |  |                          visitproc visit, void *arg)  | 
1952  | 0  | { | 
1953  |  |     /* Array's tp_traverse */  | 
1954  |  | 
  | 
1955  | 0  |     Py_ssize_t i;  | 
1956  |  | 
  | 
1957  | 0  |     for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1958  | 0  |         Py_VISIT(self->a_array[i]);  | 
1959  | 0  |     }  | 
1960  |  |  | 
1961  | 0  |     return 0;  | 
1962  | 0  | }  | 
1963  |  |  | 
1964  |  | static void  | 
1965  |  | hamt_node_array_dealloc(PyHamtNode_Array *self)  | 
1966  | 0  | { | 
1967  |  |     /* Array's tp_dealloc */  | 
1968  |  | 
  | 
1969  | 0  |     Py_ssize_t i;  | 
1970  |  | 
  | 
1971  | 0  |     PyObject_GC_UnTrack(self);  | 
1972  | 0  |     Py_TRASHCAN_BEGIN(self, hamt_node_array_dealloc)  | 
1973  |  |  | 
1974  | 0  |     for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
1975  | 0  |         Py_XDECREF(self->a_array[i]);  | 
1976  | 0  |     }  | 
1977  |  | 
  | 
1978  | 0  |     Py_TYPE(self)->tp_free((PyObject *)self);  | 
1979  | 0  |     Py_TRASHCAN_END  | 
1980  | 0  | }  | 
1981  |  |  | 
1982  |  | #ifdef Py_DEBUG  | 
1983  |  | static int  | 
1984  |  | hamt_node_array_dump(PyHamtNode_Array *node,  | 
1985  |  |                      _PyUnicodeWriter *writer, int level)  | 
1986  |  | { | 
1987  |  |     /* Debug build: __dump__() method implementation for Array nodes. */  | 
1988  |  |  | 
1989  |  |     Py_ssize_t i;  | 
1990  |  |  | 
1991  |  |     if (_hamt_dump_ident(writer, level + 1)) { | 
1992  |  |         goto error;  | 
1993  |  |     }  | 
1994  |  |  | 
1995  |  |     if (_hamt_dump_format(writer, "ArrayNode(id=%p):\n", node)) { | 
1996  |  |         goto error;  | 
1997  |  |     }  | 
1998  |  |  | 
1999  |  |     for (i = 0; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
2000  |  |         if (node->a_array[i] == NULL) { | 
2001  |  |             continue;  | 
2002  |  |         }  | 
2003  |  |  | 
2004  |  |         if (_hamt_dump_ident(writer, level + 2)) { | 
2005  |  |             goto error;  | 
2006  |  |         }  | 
2007  |  |  | 
2008  |  |         if (_hamt_dump_format(writer, "%zd::\n", i)) { | 
2009  |  |             goto error;  | 
2010  |  |         }  | 
2011  |  |  | 
2012  |  |         if (hamt_node_dump(node->a_array[i], writer, level + 1)) { | 
2013  |  |             goto error;  | 
2014  |  |         }  | 
2015  |  |  | 
2016  |  |         if (_hamt_dump_format(writer, "\n")) { | 
2017  |  |             goto error;  | 
2018  |  |         }  | 
2019  |  |     }  | 
2020  |  |  | 
2021  |  |     return 0;  | 
2022  |  | error:  | 
2023  |  |     return -1;  | 
2024  |  | }  | 
2025  |  | #endif  /* Py_DEBUG */  | 
2026  |  |  | 
2027  |  |  | 
2028  |  | /////////////////////////////////// Node Dispatch  | 
2029  |  |  | 
2030  |  |  | 
2031  |  | static PyHamtNode *  | 
2032  |  | hamt_node_assoc(PyHamtNode *node,  | 
2033  |  |                 uint32_t shift, int32_t hash,  | 
2034  |  |                 PyObject *key, PyObject *val, int* added_leaf)  | 
2035  | 0  | { | 
2036  |  |     /* Set key/value to the 'node' starting with the given shift/hash.  | 
2037  |  |        Return a new node, or the same node if key/value already  | 
2038  |  |        set.  | 
2039  |  |  | 
2040  |  |        added_leaf will be set to 1 if key/value wasn't in the  | 
2041  |  |        tree before.  | 
2042  |  |  | 
2043  |  |        This method automatically dispatches to the suitable  | 
2044  |  |        hamt_node_{nodetype}_assoc method. | 
2045  |  |     */  | 
2046  |  | 
  | 
2047  | 0  |     if (IS_BITMAP_NODE(node)) { | 
2048  | 0  |         return hamt_node_bitmap_assoc(  | 
2049  | 0  |             (PyHamtNode_Bitmap *)node,  | 
2050  | 0  |             shift, hash, key, val, added_leaf);  | 
2051  | 0  |     }  | 
2052  | 0  |     else if (IS_ARRAY_NODE(node)) { | 
2053  | 0  |         return hamt_node_array_assoc(  | 
2054  | 0  |             (PyHamtNode_Array *)node,  | 
2055  | 0  |             shift, hash, key, val, added_leaf);  | 
2056  | 0  |     }  | 
2057  | 0  |     else { | 
2058  | 0  |         assert(IS_COLLISION_NODE(node));  | 
2059  | 0  |         return hamt_node_collision_assoc(  | 
2060  | 0  |             (PyHamtNode_Collision *)node,  | 
2061  | 0  |             shift, hash, key, val, added_leaf);  | 
2062  | 0  |     }  | 
2063  | 0  | }  | 
2064  |  |  | 
2065  |  | static hamt_without_t  | 
2066  |  | hamt_node_without(PyHamtNode *node,  | 
2067  |  |                   uint32_t shift, int32_t hash,  | 
2068  |  |                   PyObject *key,  | 
2069  |  |                   PyHamtNode **new_node)  | 
2070  | 0  | { | 
2071  | 0  |     if (IS_BITMAP_NODE(node)) { | 
2072  | 0  |         return hamt_node_bitmap_without(  | 
2073  | 0  |             (PyHamtNode_Bitmap *)node,  | 
2074  | 0  |             shift, hash, key,  | 
2075  | 0  |             new_node);  | 
2076  | 0  |     }  | 
2077  | 0  |     else if (IS_ARRAY_NODE(node)) { | 
2078  | 0  |         return hamt_node_array_without(  | 
2079  | 0  |             (PyHamtNode_Array *)node,  | 
2080  | 0  |             shift, hash, key,  | 
2081  | 0  |             new_node);  | 
2082  | 0  |     }  | 
2083  | 0  |     else { | 
2084  | 0  |         assert(IS_COLLISION_NODE(node));  | 
2085  | 0  |         return hamt_node_collision_without(  | 
2086  | 0  |             (PyHamtNode_Collision *)node,  | 
2087  | 0  |             shift, hash, key,  | 
2088  | 0  |             new_node);  | 
2089  | 0  |     }  | 
2090  | 0  | }  | 
2091  |  |  | 
2092  |  | static hamt_find_t  | 
2093  |  | hamt_node_find(PyHamtNode *node,  | 
2094  |  |                uint32_t shift, int32_t hash,  | 
2095  |  |                PyObject *key, PyObject **val)  | 
2096  | 0  | { | 
2097  |  |     /* Find the key in the node starting with the given shift/hash.  | 
2098  |  |  | 
2099  |  |        If a value is found, the result will be set to F_FOUND, and  | 
2100  |  |        *val will point to the found value object.  | 
2101  |  |  | 
2102  |  |        If a value wasn't found, the result will be set to F_NOT_FOUND.  | 
2103  |  |  | 
2104  |  |        If an exception occurs during the call, the result will be F_ERROR.  | 
2105  |  |  | 
2106  |  |        This method automatically dispatches to the suitable  | 
2107  |  |        hamt_node_{nodetype}_find method. | 
2108  |  |     */  | 
2109  |  | 
  | 
2110  | 0  |     if (IS_BITMAP_NODE(node)) { | 
2111  | 0  |         return hamt_node_bitmap_find(  | 
2112  | 0  |             (PyHamtNode_Bitmap *)node,  | 
2113  | 0  |             shift, hash, key, val);  | 
2114  |  | 
  | 
2115  | 0  |     }  | 
2116  | 0  |     else if (IS_ARRAY_NODE(node)) { | 
2117  | 0  |         return hamt_node_array_find(  | 
2118  | 0  |             (PyHamtNode_Array *)node,  | 
2119  | 0  |             shift, hash, key, val);  | 
2120  | 0  |     }  | 
2121  | 0  |     else { | 
2122  | 0  |         assert(IS_COLLISION_NODE(node));  | 
2123  | 0  |         return hamt_node_collision_find(  | 
2124  | 0  |             (PyHamtNode_Collision *)node,  | 
2125  | 0  |             shift, hash, key, val);  | 
2126  | 0  |     }  | 
2127  | 0  | }  | 
2128  |  |  | 
2129  |  | #ifdef Py_DEBUG  | 
2130  |  | static int  | 
2131  |  | hamt_node_dump(PyHamtNode *node,  | 
2132  |  |                _PyUnicodeWriter *writer, int level)  | 
2133  |  | { | 
2134  |  |     /* Debug build: __dump__() method implementation for a node.  | 
2135  |  |  | 
2136  |  |        This method automatically dispatches to the suitable  | 
2137  |  |        hamt_node_{nodetype})_dump method. | 
2138  |  |     */  | 
2139  |  |  | 
2140  |  |     if (IS_BITMAP_NODE(node)) { | 
2141  |  |         return hamt_node_bitmap_dump(  | 
2142  |  |             (PyHamtNode_Bitmap *)node, writer, level);  | 
2143  |  |     }  | 
2144  |  |     else if (IS_ARRAY_NODE(node)) { | 
2145  |  |         return hamt_node_array_dump(  | 
2146  |  |             (PyHamtNode_Array *)node, writer, level);  | 
2147  |  |     }  | 
2148  |  |     else { | 
2149  |  |         assert(IS_COLLISION_NODE(node));  | 
2150  |  |         return hamt_node_collision_dump(  | 
2151  |  |             (PyHamtNode_Collision *)node, writer, level);  | 
2152  |  |     }  | 
2153  |  | }  | 
2154  |  | #endif  /* Py_DEBUG */  | 
2155  |  |  | 
2156  |  |  | 
2157  |  | /////////////////////////////////// Iterators: Machinery  | 
2158  |  |  | 
2159  |  |  | 
2160  |  | static hamt_iter_t  | 
2161  |  | hamt_iterator_next(PyHamtIteratorState *iter, PyObject **key, PyObject **val);  | 
2162  |  |  | 
2163  |  |  | 
2164  |  | static void  | 
2165  |  | hamt_iterator_init(PyHamtIteratorState *iter, PyHamtNode *root)  | 
2166  | 0  | { | 
2167  | 0  |     for (uint32_t i = 0; i < _Py_HAMT_MAX_TREE_DEPTH; i++) { | 
2168  | 0  |         iter->i_nodes[i] = NULL;  | 
2169  | 0  |         iter->i_pos[i] = 0;  | 
2170  | 0  |     }  | 
2171  |  | 
  | 
2172  | 0  |     iter->i_level = 0;  | 
2173  |  |  | 
2174  |  |     /* Note: we don't incref/decref nodes in i_nodes. */  | 
2175  | 0  |     iter->i_nodes[0] = root;  | 
2176  | 0  | }  | 
2177  |  |  | 
2178  |  | static hamt_iter_t  | 
2179  |  | hamt_iterator_bitmap_next(PyHamtIteratorState *iter,  | 
2180  |  |                           PyObject **key, PyObject **val)  | 
2181  | 0  | { | 
2182  | 0  |     int8_t level = iter->i_level;  | 
2183  |  | 
  | 
2184  | 0  |     PyHamtNode_Bitmap *node = (PyHamtNode_Bitmap *)(iter->i_nodes[level]);  | 
2185  | 0  |     Py_ssize_t pos = iter->i_pos[level];  | 
2186  |  | 
  | 
2187  | 0  |     if (pos + 1 >= Py_SIZE(node)) { | 
2188  |  | #ifdef Py_DEBUG  | 
2189  |  |         assert(iter->i_level >= 0);  | 
2190  |  |         iter->i_nodes[iter->i_level] = NULL;  | 
2191  |  | #endif  | 
2192  | 0  |         iter->i_level--;  | 
2193  | 0  |         return hamt_iterator_next(iter, key, val);  | 
2194  | 0  |     }  | 
2195  |  |  | 
2196  | 0  |     if (node->b_array[pos] == NULL) { | 
2197  | 0  |         iter->i_pos[level] = pos + 2;  | 
2198  |  | 
  | 
2199  | 0  |         int8_t next_level = level + 1;  | 
2200  | 0  |         assert(next_level < _Py_HAMT_MAX_TREE_DEPTH);  | 
2201  | 0  |         iter->i_level = next_level;  | 
2202  | 0  |         iter->i_pos[next_level] = 0;  | 
2203  | 0  |         iter->i_nodes[next_level] = (PyHamtNode *)  | 
2204  | 0  |             node->b_array[pos + 1];  | 
2205  |  | 
  | 
2206  | 0  |         return hamt_iterator_next(iter, key, val);  | 
2207  | 0  |     }  | 
2208  |  |  | 
2209  | 0  |     *key = node->b_array[pos];  | 
2210  | 0  |     *val = node->b_array[pos + 1];  | 
2211  | 0  |     iter->i_pos[level] = pos + 2;  | 
2212  | 0  |     return I_ITEM;  | 
2213  | 0  | }  | 
2214  |  |  | 
2215  |  | static hamt_iter_t  | 
2216  |  | hamt_iterator_collision_next(PyHamtIteratorState *iter,  | 
2217  |  |                              PyObject **key, PyObject **val)  | 
2218  | 0  | { | 
2219  | 0  |     int8_t level = iter->i_level;  | 
2220  |  | 
  | 
2221  | 0  |     PyHamtNode_Collision *node = (PyHamtNode_Collision *)(iter->i_nodes[level]);  | 
2222  | 0  |     Py_ssize_t pos = iter->i_pos[level];  | 
2223  |  | 
  | 
2224  | 0  |     if (pos + 1 >= Py_SIZE(node)) { | 
2225  |  | #ifdef Py_DEBUG  | 
2226  |  |         assert(iter->i_level >= 0);  | 
2227  |  |         iter->i_nodes[iter->i_level] = NULL;  | 
2228  |  | #endif  | 
2229  | 0  |         iter->i_level--;  | 
2230  | 0  |         return hamt_iterator_next(iter, key, val);  | 
2231  | 0  |     }  | 
2232  |  |  | 
2233  | 0  |     *key = node->c_array[pos];  | 
2234  | 0  |     *val = node->c_array[pos + 1];  | 
2235  | 0  |     iter->i_pos[level] = pos + 2;  | 
2236  | 0  |     return I_ITEM;  | 
2237  | 0  | }  | 
2238  |  |  | 
2239  |  | static hamt_iter_t  | 
2240  |  | hamt_iterator_array_next(PyHamtIteratorState *iter,  | 
2241  |  |                          PyObject **key, PyObject **val)  | 
2242  | 0  | { | 
2243  | 0  |     int8_t level = iter->i_level;  | 
2244  |  | 
  | 
2245  | 0  |     PyHamtNode_Array *node = (PyHamtNode_Array *)(iter->i_nodes[level]);  | 
2246  | 0  |     Py_ssize_t pos = iter->i_pos[level];  | 
2247  |  | 
  | 
2248  | 0  |     if (pos >= HAMT_ARRAY_NODE_SIZE) { | 
2249  |  | #ifdef Py_DEBUG  | 
2250  |  |         assert(iter->i_level >= 0);  | 
2251  |  |         iter->i_nodes[iter->i_level] = NULL;  | 
2252  |  | #endif  | 
2253  | 0  |         iter->i_level--;  | 
2254  | 0  |         return hamt_iterator_next(iter, key, val);  | 
2255  | 0  |     }  | 
2256  |  |  | 
2257  | 0  |     for (Py_ssize_t i = pos; i < HAMT_ARRAY_NODE_SIZE; i++) { | 
2258  | 0  |         if (node->a_array[i] != NULL) { | 
2259  | 0  |             iter->i_pos[level] = i + 1;  | 
2260  |  | 
  | 
2261  | 0  |             int8_t next_level = level + 1;  | 
2262  | 0  |             assert(next_level < _Py_HAMT_MAX_TREE_DEPTH);  | 
2263  | 0  |             iter->i_pos[next_level] = 0;  | 
2264  | 0  |             iter->i_nodes[next_level] = node->a_array[i];  | 
2265  | 0  |             iter->i_level = next_level;  | 
2266  |  | 
  | 
2267  | 0  |             return hamt_iterator_next(iter, key, val);  | 
2268  | 0  |         }  | 
2269  | 0  |     }  | 
2270  |  |  | 
2271  |  | #ifdef Py_DEBUG  | 
2272  |  |         assert(iter->i_level >= 0);  | 
2273  |  |         iter->i_nodes[iter->i_level] = NULL;  | 
2274  |  | #endif  | 
2275  |  |  | 
2276  | 0  |     iter->i_level--;  | 
2277  | 0  |     return hamt_iterator_next(iter, key, val);  | 
2278  | 0  | }  | 
2279  |  |  | 
2280  |  | static hamt_iter_t  | 
2281  |  | hamt_iterator_next(PyHamtIteratorState *iter, PyObject **key, PyObject **val)  | 
2282  | 0  | { | 
2283  | 0  |     if (iter->i_level < 0) { | 
2284  | 0  |         return I_END;  | 
2285  | 0  |     }  | 
2286  |  |  | 
2287  | 0  |     assert(iter->i_level < _Py_HAMT_MAX_TREE_DEPTH);  | 
2288  |  | 
  | 
2289  | 0  |     PyHamtNode *current = iter->i_nodes[iter->i_level];  | 
2290  |  | 
  | 
2291  | 0  |     if (IS_BITMAP_NODE(current)) { | 
2292  | 0  |         return hamt_iterator_bitmap_next(iter, key, val);  | 
2293  | 0  |     }  | 
2294  | 0  |     else if (IS_ARRAY_NODE(current)) { | 
2295  | 0  |         return hamt_iterator_array_next(iter, key, val);  | 
2296  | 0  |     }  | 
2297  | 0  |     else { | 
2298  | 0  |         assert(IS_COLLISION_NODE(current));  | 
2299  | 0  |         return hamt_iterator_collision_next(iter, key, val);  | 
2300  | 0  |     }  | 
2301  | 0  | }  | 
2302  |  |  | 
2303  |  |  | 
2304  |  | /////////////////////////////////// HAMT high-level functions  | 
2305  |  |  | 
2306  |  |  | 
2307  |  | PyHamtObject *  | 
2308  |  | _PyHamt_Assoc(PyHamtObject *o, PyObject *key, PyObject *val)  | 
2309  | 0  | { | 
2310  | 0  |     int32_t key_hash;  | 
2311  | 0  |     int added_leaf = 0;  | 
2312  | 0  |     PyHamtNode *new_root;  | 
2313  | 0  |     PyHamtObject *new_o;  | 
2314  |  | 
  | 
2315  | 0  |     key_hash = hamt_hash(key);  | 
2316  | 0  |     if (key_hash == -1) { | 
2317  | 0  |         return NULL;  | 
2318  | 0  |     }  | 
2319  |  |  | 
2320  | 0  |     new_root = hamt_node_assoc(  | 
2321  | 0  |         (PyHamtNode *)(o->h_root),  | 
2322  | 0  |         0, key_hash, key, val, &added_leaf);  | 
2323  | 0  |     if (new_root == NULL) { | 
2324  | 0  |         return NULL;  | 
2325  | 0  |     }  | 
2326  |  |  | 
2327  | 0  |     if (new_root == o->h_root) { | 
2328  | 0  |         Py_DECREF(new_root);  | 
2329  | 0  |         Py_INCREF(o);  | 
2330  | 0  |         return o;  | 
2331  | 0  |     }  | 
2332  |  |  | 
2333  | 0  |     new_o = hamt_alloc();  | 
2334  | 0  |     if (new_o == NULL) { | 
2335  | 0  |         Py_DECREF(new_root);  | 
2336  | 0  |         return NULL;  | 
2337  | 0  |     }  | 
2338  |  |  | 
2339  | 0  |     new_o->h_root = new_root;  /* borrow */  | 
2340  | 0  |     new_o->h_count = added_leaf ? o->h_count + 1 : o->h_count;  | 
2341  |  | 
  | 
2342  | 0  |     return new_o;  | 
2343  | 0  | }  | 
2344  |  |  | 
2345  |  | PyHamtObject *  | 
2346  |  | _PyHamt_Without(PyHamtObject *o, PyObject *key)  | 
2347  | 0  | { | 
2348  | 0  |     int32_t key_hash = hamt_hash(key);  | 
2349  | 0  |     if (key_hash == -1) { | 
2350  | 0  |         return NULL;  | 
2351  | 0  |     }  | 
2352  |  |  | 
2353  | 0  |     PyHamtNode *new_root = NULL;  | 
2354  |  | 
  | 
2355  | 0  |     hamt_without_t res = hamt_node_without(  | 
2356  | 0  |         (PyHamtNode *)(o->h_root),  | 
2357  | 0  |         0, key_hash, key,  | 
2358  | 0  |         &new_root);  | 
2359  |  | 
  | 
2360  | 0  |     switch (res) { | 
2361  | 0  |         case W_ERROR:  | 
2362  | 0  |             return NULL;  | 
2363  | 0  |         case W_EMPTY:  | 
2364  | 0  |             return _PyHamt_New();  | 
2365  | 0  |         case W_NOT_FOUND:  | 
2366  | 0  |             Py_INCREF(o);  | 
2367  | 0  |             return o;  | 
2368  | 0  |         case W_NEWNODE: { | 
2369  | 0  |             assert(new_root != NULL);  | 
2370  |  | 
  | 
2371  | 0  |             PyHamtObject *new_o = hamt_alloc();  | 
2372  | 0  |             if (new_o == NULL) { | 
2373  | 0  |                 Py_DECREF(new_root);  | 
2374  | 0  |                 return NULL;  | 
2375  | 0  |             }  | 
2376  |  |  | 
2377  | 0  |             new_o->h_root = new_root;  /* borrow */  | 
2378  | 0  |             new_o->h_count = o->h_count - 1;  | 
2379  | 0  |             assert(new_o->h_count >= 0);  | 
2380  | 0  |             return new_o;  | 
2381  | 0  |         }  | 
2382  | 0  |         default:  | 
2383  | 0  |             Py_UNREACHABLE();  | 
2384  | 0  |     }  | 
2385  | 0  | }  | 
2386  |  |  | 
2387  |  | static hamt_find_t  | 
2388  |  | hamt_find(PyHamtObject *o, PyObject *key, PyObject **val)  | 
2389  | 0  | { | 
2390  | 0  |     if (o->h_count == 0) { | 
2391  | 0  |         return F_NOT_FOUND;  | 
2392  | 0  |     }  | 
2393  |  |  | 
2394  | 0  |     int32_t key_hash = hamt_hash(key);  | 
2395  | 0  |     if (key_hash == -1) { | 
2396  | 0  |         return F_ERROR;  | 
2397  | 0  |     }  | 
2398  |  |  | 
2399  | 0  |     return hamt_node_find(o->h_root, 0, key_hash, key, val);  | 
2400  | 0  | }  | 
2401  |  |  | 
2402  |  |  | 
2403  |  | int  | 
2404  |  | _PyHamt_Find(PyHamtObject *o, PyObject *key, PyObject **val)  | 
2405  | 0  | { | 
2406  | 0  |     hamt_find_t res = hamt_find(o, key, val);  | 
2407  | 0  |     switch (res) { | 
2408  | 0  |         case F_ERROR:  | 
2409  | 0  |             return -1;  | 
2410  | 0  |         case F_NOT_FOUND:  | 
2411  | 0  |             return 0;  | 
2412  | 0  |         case F_FOUND:  | 
2413  | 0  |             return 1;  | 
2414  | 0  |         default:  | 
2415  | 0  |             Py_UNREACHABLE();  | 
2416  | 0  |     }  | 
2417  | 0  | }  | 
2418  |  |  | 
2419  |  |  | 
2420  |  | int  | 
2421  |  | _PyHamt_Eq(PyHamtObject *v, PyHamtObject *w)  | 
2422  | 0  | { | 
2423  | 0  |     if (v == w) { | 
2424  | 0  |         return 1;  | 
2425  | 0  |     }  | 
2426  |  |  | 
2427  | 0  |     if (v->h_count != w->h_count) { | 
2428  | 0  |         return 0;  | 
2429  | 0  |     }  | 
2430  |  |  | 
2431  | 0  |     PyHamtIteratorState iter;  | 
2432  | 0  |     hamt_iter_t iter_res;  | 
2433  | 0  |     hamt_find_t find_res;  | 
2434  | 0  |     PyObject *v_key;  | 
2435  | 0  |     PyObject *v_val;  | 
2436  | 0  |     PyObject *w_val;  | 
2437  |  | 
  | 
2438  | 0  |     hamt_iterator_init(&iter, v->h_root);  | 
2439  |  | 
  | 
2440  | 0  |     do { | 
2441  | 0  |         iter_res = hamt_iterator_next(&iter, &v_key, &v_val);  | 
2442  | 0  |         if (iter_res == I_ITEM) { | 
2443  | 0  |             find_res = hamt_find(w, v_key, &w_val);  | 
2444  | 0  |             switch (find_res) { | 
2445  | 0  |                 case F_ERROR:  | 
2446  | 0  |                     return -1;  | 
2447  |  |  | 
2448  | 0  |                 case F_NOT_FOUND:  | 
2449  | 0  |                     return 0;  | 
2450  |  |  | 
2451  | 0  |                 case F_FOUND: { | 
2452  | 0  |                     int cmp = PyObject_RichCompareBool(v_val, w_val, Py_EQ);  | 
2453  | 0  |                     if (cmp < 0) { | 
2454  | 0  |                         return -1;  | 
2455  | 0  |                     }  | 
2456  | 0  |                     if (cmp == 0) { | 
2457  | 0  |                         return 0;  | 
2458  | 0  |                     }  | 
2459  | 0  |                 }  | 
2460  | 0  |             }  | 
2461  | 0  |         }  | 
2462  | 0  |     } while (iter_res != I_END);  | 
2463  |  |  | 
2464  | 0  |     return 1;  | 
2465  | 0  | }  | 
2466  |  |  | 
2467  |  | Py_ssize_t  | 
2468  |  | _PyHamt_Len(PyHamtObject *o)  | 
2469  | 0  | { | 
2470  | 0  |     return o->h_count;  | 
2471  | 0  | }  | 
2472  |  |  | 
2473  |  | static PyHamtObject *  | 
2474  |  | hamt_alloc(void)  | 
2475  | 0  | { | 
2476  | 0  |     PyHamtObject *o;  | 
2477  | 0  |     o = PyObject_GC_New(PyHamtObject, &_PyHamt_Type);  | 
2478  | 0  |     if (o == NULL) { | 
2479  | 0  |         return NULL;  | 
2480  | 0  |     }  | 
2481  | 0  |     o->h_count = 0;  | 
2482  | 0  |     o->h_root = NULL;  | 
2483  | 0  |     o->h_weakreflist = NULL;  | 
2484  | 0  |     PyObject_GC_Track(o);  | 
2485  | 0  |     return o;  | 
2486  | 0  | }  | 
2487  |  |  | 
2488  |  | PyHamtObject *  | 
2489  |  | _PyHamt_New(void)  | 
2490  | 0  | { | 
2491  | 0  |     if (_empty_hamt != NULL) { | 
2492  |  |         /* HAMT is an immutable object so we can easily cache an  | 
2493  |  |            empty instance. */  | 
2494  | 0  |         Py_INCREF(_empty_hamt);  | 
2495  | 0  |         return _empty_hamt;  | 
2496  | 0  |     }  | 
2497  |  |  | 
2498  | 0  |     PyHamtObject *o = hamt_alloc();  | 
2499  | 0  |     if (o == NULL) { | 
2500  | 0  |         return NULL;  | 
2501  | 0  |     }  | 
2502  |  |  | 
2503  | 0  |     o->h_root = hamt_node_bitmap_new(0);  | 
2504  | 0  |     if (o->h_root == NULL) { | 
2505  | 0  |         Py_DECREF(o);  | 
2506  | 0  |         return NULL;  | 
2507  | 0  |     }  | 
2508  |  |  | 
2509  | 0  |     o->h_count = 0;  | 
2510  |  | 
  | 
2511  | 0  |     if (_empty_hamt == NULL) { | 
2512  | 0  |         Py_INCREF(o);  | 
2513  | 0  |         _empty_hamt = o;  | 
2514  | 0  |     }  | 
2515  |  | 
  | 
2516  | 0  |     return o;  | 
2517  | 0  | }  | 
2518  |  |  | 
2519  |  | #ifdef Py_DEBUG  | 
2520  |  | static PyObject *  | 
2521  |  | hamt_dump(PyHamtObject *self)  | 
2522  |  | { | 
2523  |  |     _PyUnicodeWriter writer;  | 
2524  |  |  | 
2525  |  |     _PyUnicodeWriter_Init(&writer);  | 
2526  |  |  | 
2527  |  |     if (_hamt_dump_format(&writer, "HAMT(len=%zd):\n", self->h_count)) { | 
2528  |  |         goto error;  | 
2529  |  |     }  | 
2530  |  |  | 
2531  |  |     if (hamt_node_dump(self->h_root, &writer, 0)) { | 
2532  |  |         goto error;  | 
2533  |  |     }  | 
2534  |  |  | 
2535  |  |     return _PyUnicodeWriter_Finish(&writer);  | 
2536  |  |  | 
2537  |  | error:  | 
2538  |  |     _PyUnicodeWriter_Dealloc(&writer);  | 
2539  |  |     return NULL;  | 
2540  |  | }  | 
2541  |  | #endif  /* Py_DEBUG */  | 
2542  |  |  | 
2543  |  |  | 
2544  |  | /////////////////////////////////// Iterators: Shared Iterator Implementation  | 
2545  |  |  | 
2546  |  |  | 
2547  |  | static int  | 
2548  |  | hamt_baseiter_tp_clear(PyHamtIterator *it)  | 
2549  | 0  | { | 
2550  | 0  |     Py_CLEAR(it->hi_obj);  | 
2551  | 0  |     return 0;  | 
2552  | 0  | }  | 
2553  |  |  | 
2554  |  | static void  | 
2555  |  | hamt_baseiter_tp_dealloc(PyHamtIterator *it)  | 
2556  | 0  | { | 
2557  | 0  |     PyObject_GC_UnTrack(it);  | 
2558  | 0  |     (void)hamt_baseiter_tp_clear(it);  | 
2559  | 0  |     PyObject_GC_Del(it);  | 
2560  | 0  | }  | 
2561  |  |  | 
2562  |  | static int  | 
2563  |  | hamt_baseiter_tp_traverse(PyHamtIterator *it, visitproc visit, void *arg)  | 
2564  | 0  | { | 
2565  | 0  |     Py_VISIT(it->hi_obj);  | 
2566  | 0  |     return 0;  | 
2567  | 0  | }  | 
2568  |  |  | 
2569  |  | static PyObject *  | 
2570  |  | hamt_baseiter_tp_iternext(PyHamtIterator *it)  | 
2571  | 0  | { | 
2572  | 0  |     PyObject *key;  | 
2573  | 0  |     PyObject *val;  | 
2574  | 0  |     hamt_iter_t res = hamt_iterator_next(&it->hi_iter, &key, &val);  | 
2575  |  | 
  | 
2576  | 0  |     switch (res) { | 
2577  | 0  |         case I_END:  | 
2578  | 0  |             PyErr_SetNone(PyExc_StopIteration);  | 
2579  | 0  |             return NULL;  | 
2580  |  |  | 
2581  | 0  |         case I_ITEM: { | 
2582  | 0  |             return (*(it->hi_yield))(key, val);  | 
2583  | 0  |         }  | 
2584  |  |  | 
2585  | 0  |         default: { | 
2586  | 0  |             Py_UNREACHABLE();  | 
2587  | 0  |         }  | 
2588  | 0  |     }  | 
2589  | 0  | }  | 
2590  |  |  | 
2591  |  | static Py_ssize_t  | 
2592  |  | hamt_baseiter_tp_len(PyHamtIterator *it)  | 
2593  | 0  | { | 
2594  | 0  |     return it->hi_obj->h_count;  | 
2595  | 0  | }  | 
2596  |  |  | 
2597  |  | static PyMappingMethods PyHamtIterator_as_mapping = { | 
2598  |  |     (lenfunc)hamt_baseiter_tp_len,  | 
2599  |  | };  | 
2600  |  |  | 
2601  |  | static PyObject *  | 
2602  |  | hamt_baseiter_new(PyTypeObject *type, binaryfunc yield, PyHamtObject *o)  | 
2603  | 0  | { | 
2604  | 0  |     PyHamtIterator *it = PyObject_GC_New(PyHamtIterator, type);  | 
2605  | 0  |     if (it == NULL) { | 
2606  | 0  |         return NULL;  | 
2607  | 0  |     }  | 
2608  |  |  | 
2609  | 0  |     Py_INCREF(o);  | 
2610  | 0  |     it->hi_obj = o;  | 
2611  | 0  |     it->hi_yield = yield;  | 
2612  |  | 
  | 
2613  | 0  |     hamt_iterator_init(&it->hi_iter, o->h_root);  | 
2614  |  | 
  | 
2615  | 0  |     return (PyObject*)it;  | 
2616  | 0  | }  | 
2617  |  |  | 
2618  |  | #define ITERATOR_TYPE_SHARED_SLOTS                              \  | 
2619  |  |     .tp_basicsize = sizeof(PyHamtIterator),                     \  | 
2620  |  |     .tp_itemsize = 0,                                           \  | 
2621  |  |     .tp_as_mapping = &PyHamtIterator_as_mapping,                \  | 
2622  |  |     .tp_dealloc = (destructor)hamt_baseiter_tp_dealloc,         \  | 
2623  |  |     .tp_getattro = PyObject_GenericGetAttr,                     \  | 
2624  |  |     .tp_flags = Py_TPFLAGS_DEFAULT | Py_TPFLAGS_HAVE_GC,        \  | 
2625  |  |     .tp_traverse = (traverseproc)hamt_baseiter_tp_traverse,     \  | 
2626  |  |     .tp_clear = (inquiry)hamt_baseiter_tp_clear,                \  | 
2627  |  |     .tp_iter = PyObject_SelfIter,                               \  | 
2628  |  |     .tp_iternext = (iternextfunc)hamt_baseiter_tp_iternext,  | 
2629  |  |  | 
2630  |  |  | 
2631  |  | /////////////////////////////////// _PyHamtItems_Type  | 
2632  |  |  | 
2633  |  |  | 
2634  |  | PyTypeObject _PyHamtItems_Type = { | 
2635  |  |     PyVarObject_HEAD_INIT(NULL, 0)  | 
2636  |  |     "items",  | 
2637  |  |     ITERATOR_TYPE_SHARED_SLOTS  | 
2638  |  | };  | 
2639  |  |  | 
2640  |  | static PyObject *  | 
2641  |  | hamt_iter_yield_items(PyObject *key, PyObject *val)  | 
2642  | 0  | { | 
2643  | 0  |     return PyTuple_Pack(2, key, val);  | 
2644  | 0  | }  | 
2645  |  |  | 
2646  |  | PyObject *  | 
2647  |  | _PyHamt_NewIterItems(PyHamtObject *o)  | 
2648  | 0  | { | 
2649  | 0  |     return hamt_baseiter_new(  | 
2650  | 0  |         &_PyHamtItems_Type, hamt_iter_yield_items, o);  | 
2651  | 0  | }  | 
2652  |  |  | 
2653  |  |  | 
2654  |  | /////////////////////////////////// _PyHamtKeys_Type  | 
2655  |  |  | 
2656  |  |  | 
2657  |  | PyTypeObject _PyHamtKeys_Type = { | 
2658  |  |     PyVarObject_HEAD_INIT(NULL, 0)  | 
2659  |  |     "keys",  | 
2660  |  |     ITERATOR_TYPE_SHARED_SLOTS  | 
2661  |  | };  | 
2662  |  |  | 
2663  |  | static PyObject *  | 
2664  |  | hamt_iter_yield_keys(PyObject *key, PyObject *val)  | 
2665  | 0  | { | 
2666  | 0  |     Py_INCREF(key);  | 
2667  | 0  |     return key;  | 
2668  | 0  | }  | 
2669  |  |  | 
2670  |  | PyObject *  | 
2671  |  | _PyHamt_NewIterKeys(PyHamtObject *o)  | 
2672  | 0  | { | 
2673  | 0  |     return hamt_baseiter_new(  | 
2674  | 0  |         &_PyHamtKeys_Type, hamt_iter_yield_keys, o);  | 
2675  | 0  | }  | 
2676  |  |  | 
2677  |  |  | 
2678  |  | /////////////////////////////////// _PyHamtValues_Type  | 
2679  |  |  | 
2680  |  |  | 
2681  |  | PyTypeObject _PyHamtValues_Type = { | 
2682  |  |     PyVarObject_HEAD_INIT(NULL, 0)  | 
2683  |  |     "values",  | 
2684  |  |     ITERATOR_TYPE_SHARED_SLOTS  | 
2685  |  | };  | 
2686  |  |  | 
2687  |  | static PyObject *  | 
2688  |  | hamt_iter_yield_values(PyObject *key, PyObject *val)  | 
2689  | 0  | { | 
2690  | 0  |     Py_INCREF(val);  | 
2691  | 0  |     return val;  | 
2692  | 0  | }  | 
2693  |  |  | 
2694  |  | PyObject *  | 
2695  |  | _PyHamt_NewIterValues(PyHamtObject *o)  | 
2696  | 0  | { | 
2697  | 0  |     return hamt_baseiter_new(  | 
2698  | 0  |         &_PyHamtValues_Type, hamt_iter_yield_values, o);  | 
2699  | 0  | }  | 
2700  |  |  | 
2701  |  |  | 
2702  |  | /////////////////////////////////// _PyHamt_Type  | 
2703  |  |  | 
2704  |  |  | 
2705  |  | #ifdef Py_DEBUG  | 
2706  |  | static PyObject *  | 
2707  |  | hamt_dump(PyHamtObject *self);  | 
2708  |  | #endif  | 
2709  |  |  | 
2710  |  |  | 
2711  |  | static PyObject *  | 
2712  |  | hamt_tp_new(PyTypeObject *type, PyObject *args, PyObject *kwds)  | 
2713  | 0  | { | 
2714  | 0  |     return (PyObject*)_PyHamt_New();  | 
2715  | 0  | }  | 
2716  |  |  | 
2717  |  | static int  | 
2718  |  | hamt_tp_clear(PyHamtObject *self)  | 
2719  | 0  | { | 
2720  | 0  |     Py_CLEAR(self->h_root);  | 
2721  | 0  |     return 0;  | 
2722  | 0  | }  | 
2723  |  |  | 
2724  |  |  | 
2725  |  | static int  | 
2726  |  | hamt_tp_traverse(PyHamtObject *self, visitproc visit, void *arg)  | 
2727  | 0  | { | 
2728  | 0  |     Py_VISIT(self->h_root);  | 
2729  | 0  |     return 0;  | 
2730  | 0  | }  | 
2731  |  |  | 
2732  |  | static void  | 
2733  |  | hamt_tp_dealloc(PyHamtObject *self)  | 
2734  | 0  | { | 
2735  | 0  |     PyObject_GC_UnTrack(self);  | 
2736  | 0  |     if (self->h_weakreflist != NULL) { | 
2737  | 0  |         PyObject_ClearWeakRefs((PyObject*)self);  | 
2738  | 0  |     }  | 
2739  | 0  |     (void)hamt_tp_clear(self);  | 
2740  | 0  |     Py_TYPE(self)->tp_free(self);  | 
2741  | 0  | }  | 
2742  |  |  | 
2743  |  |  | 
2744  |  | static PyObject *  | 
2745  |  | hamt_tp_richcompare(PyObject *v, PyObject *w, int op)  | 
2746  | 0  | { | 
2747  | 0  |     if (!PyHamt_Check(v) || !PyHamt_Check(w) || (op != Py_EQ && op != Py_NE)) { | 
2748  | 0  |         Py_RETURN_NOTIMPLEMENTED;  | 
2749  | 0  |     }  | 
2750  |  |  | 
2751  | 0  |     int res = _PyHamt_Eq((PyHamtObject *)v, (PyHamtObject *)w);  | 
2752  | 0  |     if (res < 0) { | 
2753  | 0  |         return NULL;  | 
2754  | 0  |     }  | 
2755  |  |  | 
2756  | 0  |     if (op == Py_NE) { | 
2757  | 0  |         res = !res;  | 
2758  | 0  |     }  | 
2759  |  | 
  | 
2760  | 0  |     if (res) { | 
2761  | 0  |         Py_RETURN_TRUE;  | 
2762  | 0  |     }  | 
2763  | 0  |     else { | 
2764  | 0  |         Py_RETURN_FALSE;  | 
2765  | 0  |     }  | 
2766  | 0  | }  | 
2767  |  |  | 
2768  |  | static int  | 
2769  |  | hamt_tp_contains(PyHamtObject *self, PyObject *key)  | 
2770  | 0  | { | 
2771  | 0  |     PyObject *val;  | 
2772  | 0  |     return _PyHamt_Find(self, key, &val);  | 
2773  | 0  | }  | 
2774  |  |  | 
2775  |  | static PyObject *  | 
2776  |  | hamt_tp_subscript(PyHamtObject *self, PyObject *key)  | 
2777  | 0  | { | 
2778  | 0  |     PyObject *val;  | 
2779  | 0  |     hamt_find_t res = hamt_find(self, key, &val);  | 
2780  | 0  |     switch (res) { | 
2781  | 0  |         case F_ERROR:  | 
2782  | 0  |             return NULL;  | 
2783  | 0  |         case F_FOUND:  | 
2784  | 0  |             Py_INCREF(val);  | 
2785  | 0  |             return val;  | 
2786  | 0  |         case F_NOT_FOUND:  | 
2787  | 0  |             PyErr_SetObject(PyExc_KeyError, key);  | 
2788  | 0  |             return NULL;  | 
2789  | 0  |         default:  | 
2790  | 0  |             Py_UNREACHABLE();  | 
2791  | 0  |     }  | 
2792  | 0  | }  | 
2793  |  |  | 
2794  |  | static Py_ssize_t  | 
2795  |  | hamt_tp_len(PyHamtObject *self)  | 
2796  | 0  | { | 
2797  | 0  |     return _PyHamt_Len(self);  | 
2798  | 0  | }  | 
2799  |  |  | 
2800  |  | static PyObject *  | 
2801  |  | hamt_tp_iter(PyHamtObject *self)  | 
2802  | 0  | { | 
2803  | 0  |     return _PyHamt_NewIterKeys(self);  | 
2804  | 0  | }  | 
2805  |  |  | 
2806  |  | static PyObject *  | 
2807  |  | hamt_py_set(PyHamtObject *self, PyObject *args)  | 
2808  | 0  | { | 
2809  | 0  |     PyObject *key;  | 
2810  | 0  |     PyObject *val;  | 
2811  |  | 
  | 
2812  | 0  |     if (!PyArg_UnpackTuple(args, "set", 2, 2, &key, &val)) { | 
2813  | 0  |         return NULL;  | 
2814  | 0  |     }  | 
2815  |  |  | 
2816  | 0  |     return (PyObject *)_PyHamt_Assoc(self, key, val);  | 
2817  | 0  | }  | 
2818  |  |  | 
2819  |  | static PyObject *  | 
2820  |  | hamt_py_get(PyHamtObject *self, PyObject *args)  | 
2821  | 0  | { | 
2822  | 0  |     PyObject *key;  | 
2823  | 0  |     PyObject *def = NULL;  | 
2824  |  | 
  | 
2825  | 0  |     if (!PyArg_UnpackTuple(args, "get", 1, 2, &key, &def)) { | 
2826  | 0  |         return NULL;  | 
2827  | 0  |     }  | 
2828  |  |  | 
2829  | 0  |     PyObject *val = NULL;  | 
2830  | 0  |     hamt_find_t res = hamt_find(self, key, &val);  | 
2831  | 0  |     switch (res) { | 
2832  | 0  |         case F_ERROR:  | 
2833  | 0  |             return NULL;  | 
2834  | 0  |         case F_FOUND:  | 
2835  | 0  |             Py_INCREF(val);  | 
2836  | 0  |             return val;  | 
2837  | 0  |         case F_NOT_FOUND:  | 
2838  | 0  |             if (def == NULL) { | 
2839  | 0  |                 Py_RETURN_NONE;  | 
2840  | 0  |             }  | 
2841  | 0  |             Py_INCREF(def);  | 
2842  | 0  |             return def;  | 
2843  | 0  |         default:  | 
2844  | 0  |             Py_UNREACHABLE();  | 
2845  | 0  |     }  | 
2846  | 0  | }  | 
2847  |  |  | 
2848  |  | static PyObject *  | 
2849  |  | hamt_py_delete(PyHamtObject *self, PyObject *key)  | 
2850  | 0  | { | 
2851  | 0  |     return (PyObject *)_PyHamt_Without(self, key);  | 
2852  | 0  | }  | 
2853  |  |  | 
2854  |  | static PyObject *  | 
2855  |  | hamt_py_items(PyHamtObject *self, PyObject *args)  | 
2856  | 0  | { | 
2857  | 0  |     return _PyHamt_NewIterItems(self);  | 
2858  | 0  | }  | 
2859  |  |  | 
2860  |  | static PyObject *  | 
2861  |  | hamt_py_values(PyHamtObject *self, PyObject *args)  | 
2862  | 0  | { | 
2863  | 0  |     return _PyHamt_NewIterValues(self);  | 
2864  | 0  | }  | 
2865  |  |  | 
2866  |  | static PyObject *  | 
2867  |  | hamt_py_keys(PyHamtObject *self, PyObject *args)  | 
2868  | 0  | { | 
2869  | 0  |     return _PyHamt_NewIterKeys(self);  | 
2870  | 0  | }  | 
2871  |  |  | 
2872  |  | #ifdef Py_DEBUG  | 
2873  |  | static PyObject *  | 
2874  |  | hamt_py_dump(PyHamtObject *self, PyObject *args)  | 
2875  |  | { | 
2876  |  |     return hamt_dump(self);  | 
2877  |  | }  | 
2878  |  | #endif  | 
2879  |  |  | 
2880  |  |  | 
2881  |  | static PyMethodDef PyHamt_methods[] = { | 
2882  |  |     {"set", (PyCFunction)hamt_py_set, METH_VARARGS, NULL}, | 
2883  |  |     {"get", (PyCFunction)hamt_py_get, METH_VARARGS, NULL}, | 
2884  |  |     {"delete", (PyCFunction)hamt_py_delete, METH_O, NULL}, | 
2885  |  |     {"items", (PyCFunction)hamt_py_items, METH_NOARGS, NULL}, | 
2886  |  |     {"keys", (PyCFunction)hamt_py_keys, METH_NOARGS, NULL}, | 
2887  |  |     {"values", (PyCFunction)hamt_py_values, METH_NOARGS, NULL}, | 
2888  |  | #ifdef Py_DEBUG  | 
2889  |  |     {"__dump__", (PyCFunction)hamt_py_dump, METH_NOARGS, NULL}, | 
2890  |  | #endif  | 
2891  |  |     {NULL, NULL} | 
2892  |  | };  | 
2893  |  |  | 
2894  |  | static PySequenceMethods PyHamt_as_sequence = { | 
2895  |  |     0,                                /* sq_length */  | 
2896  |  |     0,                                /* sq_concat */  | 
2897  |  |     0,                                /* sq_repeat */  | 
2898  |  |     0,                                /* sq_item */  | 
2899  |  |     0,                                /* sq_slice */  | 
2900  |  |     0,                                /* sq_ass_item */  | 
2901  |  |     0,                                /* sq_ass_slice */  | 
2902  |  |     (objobjproc)hamt_tp_contains,     /* sq_contains */  | 
2903  |  |     0,                                /* sq_inplace_concat */  | 
2904  |  |     0,                                /* sq_inplace_repeat */  | 
2905  |  | };  | 
2906  |  |  | 
2907  |  | static PyMappingMethods PyHamt_as_mapping = { | 
2908  |  |     (lenfunc)hamt_tp_len,             /* mp_length */  | 
2909  |  |     (binaryfunc)hamt_tp_subscript,    /* mp_subscript */  | 
2910  |  | };  | 
2911  |  |  | 
2912  |  | PyTypeObject _PyHamt_Type = { | 
2913  |  |     PyVarObject_HEAD_INIT(&PyType_Type, 0)  | 
2914  |  |     "hamt",  | 
2915  |  |     sizeof(PyHamtObject),  | 
2916  |  |     .tp_methods = PyHamt_methods,  | 
2917  |  |     .tp_as_mapping = &PyHamt_as_mapping,  | 
2918  |  |     .tp_as_sequence = &PyHamt_as_sequence,  | 
2919  |  |     .tp_iter = (getiterfunc)hamt_tp_iter,  | 
2920  |  |     .tp_dealloc = (destructor)hamt_tp_dealloc,  | 
2921  |  |     .tp_getattro = PyObject_GenericGetAttr,  | 
2922  |  |     .tp_flags = Py_TPFLAGS_DEFAULT | Py_TPFLAGS_HAVE_GC,  | 
2923  |  |     .tp_richcompare = hamt_tp_richcompare,  | 
2924  |  |     .tp_traverse = (traverseproc)hamt_tp_traverse,  | 
2925  |  |     .tp_clear = (inquiry)hamt_tp_clear,  | 
2926  |  |     .tp_new = hamt_tp_new,  | 
2927  |  |     .tp_weaklistoffset = offsetof(PyHamtObject, h_weakreflist),  | 
2928  |  |     .tp_hash = PyObject_HashNotImplemented,  | 
2929  |  | };  | 
2930  |  |  | 
2931  |  |  | 
2932  |  | /////////////////////////////////// Tree Node Types  | 
2933  |  |  | 
2934  |  |  | 
2935  |  | PyTypeObject _PyHamt_ArrayNode_Type = { | 
2936  |  |     PyVarObject_HEAD_INIT(&PyType_Type, 0)  | 
2937  |  |     "hamt_array_node",  | 
2938  |  |     sizeof(PyHamtNode_Array),  | 
2939  |  |     0,  | 
2940  |  |     .tp_dealloc = (destructor)hamt_node_array_dealloc,  | 
2941  |  |     .tp_getattro = PyObject_GenericGetAttr,  | 
2942  |  |     .tp_flags = Py_TPFLAGS_DEFAULT | Py_TPFLAGS_HAVE_GC,  | 
2943  |  |     .tp_traverse = (traverseproc)hamt_node_array_traverse,  | 
2944  |  |     .tp_free = PyObject_GC_Del,  | 
2945  |  |     .tp_hash = PyObject_HashNotImplemented,  | 
2946  |  | };  | 
2947  |  |  | 
2948  |  | PyTypeObject _PyHamt_BitmapNode_Type = { | 
2949  |  |     PyVarObject_HEAD_INIT(&PyType_Type, 0)  | 
2950  |  |     "hamt_bitmap_node",  | 
2951  |  |     sizeof(PyHamtNode_Bitmap) - sizeof(PyObject *),  | 
2952  |  |     sizeof(PyObject *),  | 
2953  |  |     .tp_dealloc = (destructor)hamt_node_bitmap_dealloc,  | 
2954  |  |     .tp_getattro = PyObject_GenericGetAttr,  | 
2955  |  |     .tp_flags = Py_TPFLAGS_DEFAULT | Py_TPFLAGS_HAVE_GC,  | 
2956  |  |     .tp_traverse = (traverseproc)hamt_node_bitmap_traverse,  | 
2957  |  |     .tp_free = PyObject_GC_Del,  | 
2958  |  |     .tp_hash = PyObject_HashNotImplemented,  | 
2959  |  | };  | 
2960  |  |  | 
2961  |  | PyTypeObject _PyHamt_CollisionNode_Type = { | 
2962  |  |     PyVarObject_HEAD_INIT(&PyType_Type, 0)  | 
2963  |  |     "hamt_collision_node",  | 
2964  |  |     sizeof(PyHamtNode_Collision) - sizeof(PyObject *),  | 
2965  |  |     sizeof(PyObject *),  | 
2966  |  |     .tp_dealloc = (destructor)hamt_node_collision_dealloc,  | 
2967  |  |     .tp_getattro = PyObject_GenericGetAttr,  | 
2968  |  |     .tp_flags = Py_TPFLAGS_DEFAULT | Py_TPFLAGS_HAVE_GC,  | 
2969  |  |     .tp_traverse = (traverseproc)hamt_node_collision_traverse,  | 
2970  |  |     .tp_free = PyObject_GC_Del,  | 
2971  |  |     .tp_hash = PyObject_HashNotImplemented,  | 
2972  |  | };  | 
2973  |  |  | 
2974  |  |  | 
2975  |  | int  | 
2976  |  | _PyHamt_Init(void)  | 
2977  | 14  | { | 
2978  | 14  |     if ((PyType_Ready(&_PyHamt_Type) < 0) ||  | 
2979  | 14  |         (PyType_Ready(&_PyHamt_ArrayNode_Type) < 0) ||  | 
2980  | 14  |         (PyType_Ready(&_PyHamt_BitmapNode_Type) < 0) ||  | 
2981  | 14  |         (PyType_Ready(&_PyHamt_CollisionNode_Type) < 0) ||  | 
2982  | 14  |         (PyType_Ready(&_PyHamtKeys_Type) < 0) ||  | 
2983  | 14  |         (PyType_Ready(&_PyHamtValues_Type) < 0) ||  | 
2984  | 14  |         (PyType_Ready(&_PyHamtItems_Type) < 0))  | 
2985  | 0  |     { | 
2986  | 0  |         return 0;  | 
2987  | 0  |     }  | 
2988  |  |  | 
2989  | 14  |     return 1;  | 
2990  | 14  | }  | 
2991  |  |  | 
2992  |  | void  | 
2993  |  | _PyHamt_Fini(void)  | 
2994  | 0  | { | 
2995  | 0  |     Py_CLEAR(_empty_hamt);  | 
2996  |  |     Py_CLEAR(_empty_bitmap_node);  | 
2997  | 0  | }  |