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..
aes ef917549f5 Add vpaes-loongarch64.pl module. 2 years ago
aria 36c269c302 Change loops conditions to make zero loop risk more obvious. 2 years ago
asn1 1555c86e5f Cast values to match printf format strings. 2 years ago
async e077455e9e Stop raising ERR_R_MALLOC_FAILURE in most places 2 years ago
bf 1567a821a4 crypto: Fix various typos, repeated words, align some spelling to LDP. 2 years ago
bio cd715b7e7f Add support for KTLS zerocopy sendfile on Linux 2 years ago
bn d2f6e66d28 Improve FIPS RSA keygen performance. 2 years ago
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camellia 9968c77539 Rename x86-32 assembly files from .s to .S. 2 years ago
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chacha 3f42f41ad1 Improve chacha20 perfomance on aarch64 by interleaving scalar with SVE/SVE2 2 years ago
cmac e077455e9e Stop raising ERR_R_MALLOC_FAILURE in most places 2 years ago
cmp a2ede0396a add missing OSSL_CMP_CTX_reset_geninfo_ITAVs() function 2 years ago
cms 60ea150b1f CMS_decrypt_set1_*(): remove misleading error queue entry when recipient mismatch was not the issue 2 years ago
comp 3840271e98 Add zlib oneshot compression 2 years ago
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ec f3090fc710 Implement deterministic ECDSA sign (RFC6979) 1 year ago
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err ad062480f7 Implements Hybrid Public Key Encryption (HPKE) as per RFC9180. 1 year ago
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bsearch.c 5c3f1e34b5 ossl_bsearch(): New generic internal binary search utility function 5 years ago
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core_fetch.c e1eafe8c87 "Reserve" the method store when constructing methods 2 years ago
core_namemap.c 5317b6ee1f Add deprecation macro for 3.1 and deprecate OPENSSL_LH_stats 2 years ago
cpt_err.c 826da1451b err: add additional errors 2 years ago
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ctype.c 286053fc8f tolower: refine the tolower code to avoid a memory access 2 years ago
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der_writer.c 59196250cb der_writer: Use uint32_t instead of long. 2 years ago
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ebcdic.c 0e9725bcb9 Following the license change, modify the boilerplates in crypto/ 6 years ago
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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.