Ryan Kelley c92c3dfb99 Moving notify check after the no time check 2 роки тому
..
aes 1efd8533e1 Fix aarch64 signed bit shift issue found by UBSAN 2 роки тому
aria 36c269c302 Change loops conditions to make zero loop risk more obvious. 2 роки тому
asn1 67c0460b89 Handle SMIME_crlf_copy return code 2 роки тому
async fecb3aae22 Update copyright year 2 роки тому
bf 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
bio e0c4e43e40 BIO_sendmmsg/BIO_recvmmsg (API only) 2 роки тому
bn 70f589ae41 Fix memory leak in BN_rand_range() 2 роки тому
buffer 38fc02a708 Update copyright year 3 роки тому
camellia 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
cast 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
chacha ca6286c382 Add ROTATE inline RISC-V zbb/zbkb asm for chacha 2 роки тому
cmac 8d9fec1781 Fix the incorrect checks of EVP_CIPHER_CTX_set_key_length 2 роки тому
cmp b6fbef1159 Add OSSL_CMP_CTX_get0_validatedSrvCert(), correcting OSSL_CMP_validate_msg() 2 роки тому
cms 83ab43da0c Check that IV length is not less than zero 2 роки тому
comp 73a815defe Fix coverity 1493364 & 1493375: unchecked return value 3 роки тому
conf d840f07bcd Avoid crashing if CONF_modules_unload() is called after OPENSSL_cleanup() 2 роки тому
crmf de56f726e1 crmf_lib.c: Make sure Ed signature for POPO is called without digest 2 роки тому
ct 163bf682fd CTLOG_new_ex: Fix copy&paste error when setting propq 2 роки тому
des 6136408e6a Add ROTATE inline RISC-V zbb/zbkb asm for DES 2 роки тому
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dsa 3ee2611677 Coverity: fix 1506297: negative returns 2 роки тому
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ec b304b3e8f7 Fix EC_KEY_set_private_key() priv_key regression 2 роки тому
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engine 5317b6ee1f Add deprecation macro for 3.1 and deprecate OPENSSL_LH_stats 2 роки тому
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ess b93f6c2db9 err: rename err_load_xxx_strings_int functions 3 роки тому
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ffc 5f311b10ab ossl_ffc_params_copy: Copy the keylength too 2 роки тому
hmac 21dfdbef49 Adapt other parts of the source to the changed EVP_Q_digest() and EVP_Q_mac() 3 роки тому
http 8c65e1f719 http_client.c: 2nd fix for calculation of Content-Length in set1_content() 2 роки тому
idea 3c2bdd7df9 Update copyright year 3 роки тому
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perlasm 272138795f x86asm: Generate endbr32 based on __CET__. 2 роки тому
pkcs12 af801ec892 Fix memleak in PKCS12_pbe_crypt_ex() 2 роки тому
pkcs7 67c0460b89 Handle SMIME_crlf_copy return code 2 роки тому
poly1305 db24ed5430 Generate the preprocessed .s files for chacha and poly 1305 on ia64 2 роки тому
property 56d4ff6cd7 property: make cache flushing slight less deterministic 2 роки тому
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rc2 aff636a489 Update copyright year 3 роки тому
rc4 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
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ripemd 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
rsa 28adea9597 Fix memory leak in ossl_rsa_fromdata. 2 роки тому
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sha a8b238f0e4 Fix SHA, SHAKE, and KECCAK ASM flag passing 2 роки тому
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whrlpool 9968c77539 Rename x86-32 assembly files from .s to .S. 2 роки тому
x509 c92c3dfb99 Moving notify check after the no time check 2 роки тому
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bsearch.c 5c3f1e34b5 ossl_bsearch(): New generic internal binary search utility function 5 роки тому
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core_namemap.c 5317b6ee1f Add deprecation macro for 3.1 and deprecate OPENSSL_LH_stats 2 роки тому
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cpuid.c fecb3aae22 Update copyright year 2 роки тому
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README-sparse_array.md

Sparse Arrays

The sparse_array.c file contains an implementation of a sparse array that attempts to be both space and time efficient.

The sparse array is represented using a tree structure. Each node in the tree contains a block of pointers to either the user supplied leaf values or to another node.

There are a number of parameters used to define the block size:

OPENSSL_SA_BLOCK_BITS   Specifies the number of bits covered by each block
SA_BLOCK_MAX            Specifies the number of pointers in each block
SA_BLOCK_MASK           Specifies a bit mask to perform modulo block size
SA_BLOCK_MAX_LEVELS     Indicates the maximum possible height of the tree

These constants are inter-related:

SA_BLOCK_MAX        = 2 ^ OPENSSL_SA_BLOCK_BITS
SA_BLOCK_MASK       = SA_BLOCK_MAX - 1
SA_BLOCK_MAX_LEVELS = number of bits in size_t divided by
                      OPENSSL_SA_BLOCK_BITS rounded up to the next multiple
                      of OPENSSL_SA_BLOCK_BITS

OPENSSL_SA_BLOCK_BITS can be defined at compile time and this overrides the built in setting.

As a space and performance optimisation, the height of the tree is usually less than the maximum possible height. Only sufficient height is allocated to accommodate the largest index added to the data structure.

The largest index used to add a value to the array determines the tree height:

    +----------------------+---------------------+
    | Largest Added Index  |   Height of Tree    |
    +----------------------+---------------------+
    | SA_BLOCK_MAX     - 1 |          1          |
    | SA_BLOCK_MAX ^ 2 - 1 |          2          |
    | SA_BLOCK_MAX ^ 3 - 1 |          3          |
    | ...                  |          ...        |
    | size_t max           | SA_BLOCK_MAX_LEVELS |
    +----------------------+---------------------+

The tree height is dynamically increased as needed based on additions.

An empty tree is represented by a NULL root pointer. Inserting a value at index 0 results in the allocation of a top level node full of null pointers except for the single pointer to the user's data (N = SA_BLOCK_MAX for brevity):

    +----+
    |Root|
    |Node|
    +-+--+
      |
      |
      |
      v
    +-+-+---+---+---+---+
    | 0 | 1 | 2 |...|N-1|
    |   |nil|nil|...|nil|
    +-+-+---+---+---+---+
      |
      |
      |
      v
    +-+--+
    |User|
    |Data|
    +----+
Index 0

Inserting at element 2N+1 creates a new root node and pushes down the old root node. It then creates a second second level node to hold the pointer to the user's new data:

    +----+
    |Root|
    |Node|
    +-+--+
      |
      |
      |
      v
    +-+-+---+---+---+---+
    | 0 | 1 | 2 |...|N-1|
    |   |nil|   |...|nil|
    +-+-+---+-+-+---+---+
      |       |
      |       +------------------+
      |                          |
      v                          v
    +-+-+---+---+---+---+      +-+-+---+---+---+---+
    | 0 | 1 | 2 |...|N-1|      | 0 | 1 | 2 |...|N-1|
    |nil|   |nil|...|nil|      |nil|   |nil|...|nil|
    +-+-+---+---+---+---+      +---+-+-+---+---+---+
      |                              |
      |                              |
      |                              |
      v                              v
    +-+--+                         +-+--+
    |User|                         |User|
    |Data|                         |Data|
    +----+                         +----+
Index 0                       Index 2N+1

The nodes themselves are allocated in a sparse manner. Only nodes which exist along a path from the root of the tree to an added leaf will be allocated. The complexity is hidden and nodes are allocated on an as needed basis. Because the data is expected to be sparse this doesn't result in a large waste of space.

Values can be removed from the sparse array by setting their index position to NULL. The data structure does not attempt to reclaim nodes or reduce the height of the tree on removal. For example, now setting index 0 to NULL would result in:

    +----+
    |Root|
    |Node|
    +-+--+
      |
      |
      |
      v
    +-+-+---+---+---+---+
    | 0 | 1 | 2 |...|N-1|
    |   |nil|   |...|nil|
    +-+-+---+-+-+---+---+
      |       |
      |       +------------------+
      |                          |
      v                          v
    +-+-+---+---+---+---+      +-+-+---+---+---+---+
    | 0 | 1 | 2 |...|N-1|      | 0 | 1 | 2 |...|N-1|
    |nil|nil|nil|...|nil|      |nil|   |nil|...|nil|
    +---+---+---+---+---+      +---+-+-+---+---+---+
                                     |
                                     |
                                     |
                                     v
                                   +-+--+
                                   |User|
                                   |Data|
                                   +----+
                              Index 2N+1

Accesses to elements in the sparse array take O(log n) time where n is the largest element. The base of the logarithm is SA_BLOCK_MAX, so for moderately small indices (e.g. NIDs), single level (constant time) access is achievable. Space usage is O(minimum(m, n log(n)) where m is the number of elements in the array.

Note: sparse arrays only include pointers to types. Thus, SPARSE_ARRAY_OF(char) can be used to store a string.