15630257fSFerruh Yigit.. SPDX-License-Identifier: BSD-3-Clause 27adf992fSMarcin Smoczynski Copyright(c) 2016-2020 Intel Corporation. 30318c02bSDeclan Doherty 40318c02bSDeclan DohertyCryptography Device Library 50318c02bSDeclan Doherty=========================== 60318c02bSDeclan Doherty 70318c02bSDeclan DohertyThe cryptodev library provides a Crypto device framework for management and 80318c02bSDeclan Dohertyprovisioning of hardware and software Crypto poll mode drivers, defining generic 90318c02bSDeclan DohertyAPIs which support a number of different Crypto operations. The framework 100318c02bSDeclan Dohertycurrently only supports cipher, authentication, chained cipher/authentication 11b9209dc2SShally Vermaand AEAD symmetric and asymmetric Crypto operations. 120318c02bSDeclan Doherty 130318c02bSDeclan Doherty 140318c02bSDeclan DohertyDesign Principles 150318c02bSDeclan Doherty----------------- 160318c02bSDeclan Doherty 17d629b7b5SJohn McNamaraThe cryptodev library follows the same basic principles as those used in DPDK's 180318c02bSDeclan DohertyEthernet Device framework. The Crypto framework provides a generic Crypto device 190318c02bSDeclan Dohertyframework which supports both physical (hardware) and virtual (software) Crypto 200318c02bSDeclan Dohertydevices as well as a generic Crypto API which allows Crypto devices to be 210318c02bSDeclan Dohertymanaged and configured and supports Crypto operations to be provisioned on 220318c02bSDeclan DohertyCrypto poll mode driver. 230318c02bSDeclan Doherty 240318c02bSDeclan Doherty 250318c02bSDeclan DohertyDevice Management 260318c02bSDeclan Doherty----------------- 270318c02bSDeclan Doherty 280318c02bSDeclan DohertyDevice Creation 290318c02bSDeclan Doherty~~~~~~~~~~~~~~~ 300318c02bSDeclan Doherty 310318c02bSDeclan DohertyPhysical Crypto devices are discovered during the PCI probe/enumeration of the 320318c02bSDeclan DohertyEAL function which is executed at DPDK initialization, based on 330318c02bSDeclan Dohertytheir PCI device identifier, each unique PCI BDF (bus/bridge, device, 340318c02bSDeclan Dohertyfunction). Specific physical Crypto devices, like other physical devices in DPDK 350318c02bSDeclan Dohertycan be white-listed or black-listed using the EAL command line options. 360318c02bSDeclan Doherty 370318c02bSDeclan DohertyVirtual devices can be created by two mechanisms, either using the EAL command 380318c02bSDeclan Dohertyline options or from within the application using an EAL API directly. 390318c02bSDeclan Doherty 400318c02bSDeclan DohertyFrom the command line using the --vdev EAL option 410318c02bSDeclan Doherty 420318c02bSDeclan Doherty.. code-block:: console 430318c02bSDeclan Doherty 44e1fc5b76SPablo de Lara --vdev 'crypto_aesni_mb0,max_nb_queue_pairs=2,socket_id=0' 450318c02bSDeclan Doherty 46c149818bSVipin Varghese.. Note:: 47c149818bSVipin Varghese 48c149818bSVipin Varghese * If DPDK application requires multiple software crypto PMD devices then required 49c149818bSVipin Varghese number of ``--vdev`` with appropriate libraries are to be added. 50c149818bSVipin Varghese 51d629b7b5SJohn McNamara * An Application with crypto PMD instances sharing the same library requires unique ID. 52c149818bSVipin Varghese 53c149818bSVipin Varghese Example: ``--vdev 'crypto_aesni_mb0' --vdev 'crypto_aesni_mb1'`` 54c149818bSVipin Varghese 558b283e90SThierry HerbelotOr using the rte_vdev_init API within the application code. 560318c02bSDeclan Doherty 570318c02bSDeclan Doherty.. code-block:: c 580318c02bSDeclan Doherty 5930883f3eSPablo de Lara rte_vdev_init("crypto_aesni_mb", 60e1fc5b76SPablo de Lara "max_nb_queue_pairs=2,socket_id=0") 610318c02bSDeclan Doherty 620318c02bSDeclan DohertyAll virtual Crypto devices support the following initialization parameters: 630318c02bSDeclan Doherty 640318c02bSDeclan Doherty* ``max_nb_queue_pairs`` - maximum number of queue pairs supported by the device. 650318c02bSDeclan Doherty* ``socket_id`` - socket on which to allocate the device resources on. 660318c02bSDeclan Doherty 670318c02bSDeclan Doherty 680318c02bSDeclan DohertyDevice Identification 690318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~ 700318c02bSDeclan Doherty 710318c02bSDeclan DohertyEach device, whether virtual or physical is uniquely designated by two 720318c02bSDeclan Dohertyidentifiers: 730318c02bSDeclan Doherty 740318c02bSDeclan Doherty- A unique device index used to designate the Crypto device in all functions 750318c02bSDeclan Doherty exported by the cryptodev API. 760318c02bSDeclan Doherty 770318c02bSDeclan Doherty- A device name used to designate the Crypto device in console messages, for 780318c02bSDeclan Doherty administration or debugging purposes. For ease of use, the port name includes 790318c02bSDeclan Doherty the port index. 800318c02bSDeclan Doherty 810318c02bSDeclan Doherty 820318c02bSDeclan DohertyDevice Configuration 830318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~ 840318c02bSDeclan Doherty 850318c02bSDeclan DohertyThe configuration of each Crypto device includes the following operations: 860318c02bSDeclan Doherty 870318c02bSDeclan Doherty- Allocation of resources, including hardware resources if a physical device. 880318c02bSDeclan Doherty- Resetting the device into a well-known default state. 890318c02bSDeclan Doherty- Initialization of statistics counters. 900318c02bSDeclan Doherty 910318c02bSDeclan DohertyThe rte_cryptodev_configure API is used to configure a Crypto device. 920318c02bSDeclan Doherty 930318c02bSDeclan Doherty.. code-block:: c 940318c02bSDeclan Doherty 950318c02bSDeclan Doherty int rte_cryptodev_configure(uint8_t dev_id, 960318c02bSDeclan Doherty struct rte_cryptodev_config *config) 970318c02bSDeclan Doherty 98bb59dac7SPablo de LaraThe ``rte_cryptodev_config`` structure is used to pass the configuration 99bb59dac7SPablo de Laraparameters for socket selection and number of queue pairs. 1000318c02bSDeclan Doherty 1010318c02bSDeclan Doherty.. code-block:: c 1020318c02bSDeclan Doherty 1030318c02bSDeclan Doherty struct rte_cryptodev_config { 1040318c02bSDeclan Doherty int socket_id; 1050318c02bSDeclan Doherty /**< Socket to allocate resources on */ 1060318c02bSDeclan Doherty uint16_t nb_queue_pairs; 1070318c02bSDeclan Doherty /**< Number of queue pairs to configure on device */ 1080318c02bSDeclan Doherty }; 1090318c02bSDeclan Doherty 1100318c02bSDeclan Doherty 1110318c02bSDeclan DohertyConfiguration of Queue Pairs 1120318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 1130318c02bSDeclan Doherty 1140318c02bSDeclan DohertyEach Crypto devices queue pair is individually configured through the 1150318c02bSDeclan Doherty``rte_cryptodev_queue_pair_setup`` API. 1160318c02bSDeclan DohertyEach queue pairs resources may be allocated on a specified socket. 1170318c02bSDeclan Doherty 1180318c02bSDeclan Doherty.. code-block:: c 1190318c02bSDeclan Doherty 1200318c02bSDeclan Doherty int rte_cryptodev_queue_pair_setup(uint8_t dev_id, uint16_t queue_pair_id, 1210318c02bSDeclan Doherty const struct rte_cryptodev_qp_conf *qp_conf, 1220318c02bSDeclan Doherty int socket_id) 1230318c02bSDeclan Doherty 1240318c02bSDeclan Doherty struct rte_cryptodev_qp_conf { 1250318c02bSDeclan Doherty uint32_t nb_descriptors; /**< Number of descriptors per queue pair */ 126725d2a7fSFan Zhang struct rte_mempool *mp_session; 127725d2a7fSFan Zhang /**< The mempool for creating session in sessionless mode */ 128725d2a7fSFan Zhang struct rte_mempool *mp_session_private; 129725d2a7fSFan Zhang /**< The mempool for creating sess private data in sessionless mode */ 1300318c02bSDeclan Doherty }; 1310318c02bSDeclan Doherty 1320318c02bSDeclan Doherty 133725d2a7fSFan ZhangThe fields ``mp_session`` and ``mp_session_private`` are used for creating 134725d2a7fSFan Zhangtemporary session to process the crypto operations in the session-less mode. 135725d2a7fSFan ZhangThey can be the same other different mempools. Please note not all Cryptodev 136725d2a7fSFan ZhangPMDs supports session-less mode. 137725d2a7fSFan Zhang 138725d2a7fSFan Zhang 1390318c02bSDeclan DohertyLogical Cores, Memory and Queues Pair Relationships 1400318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 1410318c02bSDeclan Doherty 1420318c02bSDeclan DohertyThe Crypto device Library as the Poll Mode Driver library support NUMA for when 1430318c02bSDeclan Dohertya processor’s logical cores and interfaces utilize its local memory. Therefore 1440318c02bSDeclan DohertyCrypto operations, and in the case of symmetric Crypto operations, the session 1450318c02bSDeclan Dohertyand the mbuf being operated on, should be allocated from memory pools created 1460318c02bSDeclan Dohertyin the local memory. The buffers should, if possible, remain on the local 1470318c02bSDeclan Dohertyprocessor to obtain the best performance results and buffer descriptors should 1480318c02bSDeclan Dohertybe populated with mbufs allocated from a mempool allocated from local memory. 1490318c02bSDeclan Doherty 1500318c02bSDeclan DohertyThe run-to-completion model also performs better, especially in the case of 1510318c02bSDeclan Dohertyvirtual Crypto devices, if the Crypto operation and session and data buffer is 1520318c02bSDeclan Dohertyin local memory instead of a remote processor's memory. This is also true for 1530318c02bSDeclan Dohertythe pipe-line model provided all logical cores used are located on the same 1540318c02bSDeclan Dohertyprocessor. 1550318c02bSDeclan Doherty 1560318c02bSDeclan DohertyMultiple logical cores should never share the same queue pair for enqueuing 1570318c02bSDeclan Dohertyoperations or dequeuing operations on the same Crypto device since this would 1580318c02bSDeclan Dohertyrequire global locks and hinder performance. It is however possible to use a 1590318c02bSDeclan Dohertydifferent logical core to dequeue an operation on a queue pair from the logical 1600318c02bSDeclan Dohertycore which it was enqueued on. This means that a crypto burst enqueue/dequeue 1610318c02bSDeclan DohertyAPIs are a logical place to transition from one logical core to another in a 1620318c02bSDeclan Dohertypacket processing pipeline. 1630318c02bSDeclan Doherty 1640318c02bSDeclan Doherty 1650318c02bSDeclan DohertyDevice Features and Capabilities 1660318c02bSDeclan Doherty--------------------------------- 1670318c02bSDeclan Doherty 1680318c02bSDeclan DohertyCrypto devices define their functionality through two mechanisms, global device 1690318c02bSDeclan Dohertyfeatures and algorithm capabilities. Global devices features identify device 1700318c02bSDeclan Dohertywide level features which are applicable to the whole device such as 171b9209dc2SShally Vermathe device having hardware acceleration or supporting symmetric and/or asymmetric 172b9209dc2SShally VermaCrypto operations. 1730318c02bSDeclan Doherty 1740318c02bSDeclan DohertyThe capabilities mechanism defines the individual algorithms/functions which 17583984b7fSPablo de Larathe device supports, such as a specific symmetric Crypto cipher, 17683984b7fSPablo de Laraauthentication operation or Authenticated Encryption with Associated Data 17783984b7fSPablo de Lara(AEAD) operation. 1780318c02bSDeclan Doherty 1790318c02bSDeclan Doherty 1800318c02bSDeclan DohertyDevice Features 1810318c02bSDeclan Doherty~~~~~~~~~~~~~~~ 1820318c02bSDeclan Doherty 1830318c02bSDeclan DohertyCurrently the following Crypto device features are defined: 1840318c02bSDeclan Doherty 1850318c02bSDeclan Doherty* Symmetric Crypto operations 1860318c02bSDeclan Doherty* Asymmetric Crypto operations 1870318c02bSDeclan Doherty* Chaining of symmetric Crypto operations 1880318c02bSDeclan Doherty* SSE accelerated SIMD vector operations 1890318c02bSDeclan Doherty* AVX accelerated SIMD vector operations 1900318c02bSDeclan Doherty* AVX2 accelerated SIMD vector operations 1910318c02bSDeclan Doherty* AESNI accelerated instructions 1920318c02bSDeclan Doherty* Hardware off-load processing 1930318c02bSDeclan Doherty 1940318c02bSDeclan Doherty 1950318c02bSDeclan DohertyDevice Operation Capabilities 1960318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 1970318c02bSDeclan Doherty 1980318c02bSDeclan DohertyCrypto capabilities which identify particular algorithm which the Crypto PMD 1990318c02bSDeclan Dohertysupports are defined by the operation type, the operation transform, the 2000318c02bSDeclan Dohertytransform identifier and then the particulars of the transform. For the full 2010318c02bSDeclan Dohertyscope of the Crypto capability see the definition of the structure in the 2020318c02bSDeclan Doherty*DPDK API Reference*. 2030318c02bSDeclan Doherty 2040318c02bSDeclan Doherty.. code-block:: c 2050318c02bSDeclan Doherty 2060318c02bSDeclan Doherty struct rte_cryptodev_capabilities; 2070318c02bSDeclan Doherty 2080318c02bSDeclan DohertyEach Crypto poll mode driver defines its own private array of capabilities 2090318c02bSDeclan Dohertyfor the operations it supports. Below is an example of the capabilities for a 2100318c02bSDeclan DohertyPMD which supports the authentication algorithm SHA1_HMAC and the cipher 2110318c02bSDeclan Dohertyalgorithm AES_CBC. 2120318c02bSDeclan Doherty 2130318c02bSDeclan Doherty.. code-block:: c 2140318c02bSDeclan Doherty 2150318c02bSDeclan Doherty static const struct rte_cryptodev_capabilities pmd_capabilities[] = { 2160318c02bSDeclan Doherty { /* SHA1 HMAC */ 2170318c02bSDeclan Doherty .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 2180318c02bSDeclan Doherty .sym = { 2190318c02bSDeclan Doherty .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 2200318c02bSDeclan Doherty .auth = { 2210318c02bSDeclan Doherty .algo = RTE_CRYPTO_AUTH_SHA1_HMAC, 2220318c02bSDeclan Doherty .block_size = 64, 2230318c02bSDeclan Doherty .key_size = { 2240318c02bSDeclan Doherty .min = 64, 2250318c02bSDeclan Doherty .max = 64, 2260318c02bSDeclan Doherty .increment = 0 2270318c02bSDeclan Doherty }, 2280318c02bSDeclan Doherty .digest_size = { 2290318c02bSDeclan Doherty .min = 12, 2300318c02bSDeclan Doherty .max = 12, 2310318c02bSDeclan Doherty .increment = 0 2320318c02bSDeclan Doherty }, 233acf86169SPablo de Lara .aad_size = { 0 }, 234acf86169SPablo de Lara .iv_size = { 0 } 2350318c02bSDeclan Doherty } 2360318c02bSDeclan Doherty } 2370318c02bSDeclan Doherty }, 2380318c02bSDeclan Doherty { /* AES CBC */ 2390318c02bSDeclan Doherty .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 2400318c02bSDeclan Doherty .sym = { 2410318c02bSDeclan Doherty .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 2420318c02bSDeclan Doherty .cipher = { 2430318c02bSDeclan Doherty .algo = RTE_CRYPTO_CIPHER_AES_CBC, 2440318c02bSDeclan Doherty .block_size = 16, 2450318c02bSDeclan Doherty .key_size = { 2460318c02bSDeclan Doherty .min = 16, 2470318c02bSDeclan Doherty .max = 32, 2480318c02bSDeclan Doherty .increment = 8 2490318c02bSDeclan Doherty }, 2500318c02bSDeclan Doherty .iv_size = { 2510318c02bSDeclan Doherty .min = 16, 2520318c02bSDeclan Doherty .max = 16, 2530318c02bSDeclan Doherty .increment = 0 2540318c02bSDeclan Doherty } 2550318c02bSDeclan Doherty } 2560318c02bSDeclan Doherty } 2570318c02bSDeclan Doherty } 2580318c02bSDeclan Doherty } 2590318c02bSDeclan Doherty 2600318c02bSDeclan Doherty 2610318c02bSDeclan DohertyCapabilities Discovery 2620318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~ 2630318c02bSDeclan Doherty 2640318c02bSDeclan DohertyDiscovering the features and capabilities of a Crypto device poll mode driver 2650318c02bSDeclan Dohertyis achieved through the ``rte_cryptodev_info_get`` function. 2660318c02bSDeclan Doherty 2670318c02bSDeclan Doherty.. code-block:: c 2680318c02bSDeclan Doherty 2690318c02bSDeclan Doherty void rte_cryptodev_info_get(uint8_t dev_id, 2700318c02bSDeclan Doherty struct rte_cryptodev_info *dev_info); 2710318c02bSDeclan Doherty 2720318c02bSDeclan DohertyThis allows the user to query a specific Crypto PMD and get all the device 2730318c02bSDeclan Dohertyfeatures and capabilities. The ``rte_cryptodev_info`` structure contains all the 2740318c02bSDeclan Dohertyrelevant information for the device. 2750318c02bSDeclan Doherty 2760318c02bSDeclan Doherty.. code-block:: c 2770318c02bSDeclan Doherty 2780318c02bSDeclan Doherty struct rte_cryptodev_info { 2790318c02bSDeclan Doherty const char *driver_name; 2807a364faeSSlawomir Mrozowicz uint8_t driver_id; 281a4493be5SPablo de Lara struct rte_device *device; 2820318c02bSDeclan Doherty 2830318c02bSDeclan Doherty uint64_t feature_flags; 2840318c02bSDeclan Doherty 2850318c02bSDeclan Doherty const struct rte_cryptodev_capabilities *capabilities; 2860318c02bSDeclan Doherty 2870318c02bSDeclan Doherty unsigned max_nb_queue_pairs; 2880318c02bSDeclan Doherty 2890318c02bSDeclan Doherty struct { 2900318c02bSDeclan Doherty unsigned max_nb_sessions; 2910318c02bSDeclan Doherty } sym; 2920318c02bSDeclan Doherty }; 2930318c02bSDeclan Doherty 2940318c02bSDeclan Doherty 2950318c02bSDeclan DohertyOperation Processing 2960318c02bSDeclan Doherty-------------------- 2970318c02bSDeclan Doherty 2980318c02bSDeclan DohertyScheduling of Crypto operations on DPDK's application data path is 2990318c02bSDeclan Dohertyperformed using a burst oriented asynchronous API set. A queue pair on a Crypto 3000318c02bSDeclan Dohertydevice accepts a burst of Crypto operations using enqueue burst API. On physical 3010318c02bSDeclan DohertyCrypto devices the enqueue burst API will place the operations to be processed 3020318c02bSDeclan Dohertyon the devices hardware input queue, for virtual devices the processing of the 3030318c02bSDeclan DohertyCrypto operations is usually completed during the enqueue call to the Crypto 3040318c02bSDeclan Dohertydevice. The dequeue burst API will retrieve any processed operations available 3050318c02bSDeclan Dohertyfrom the queue pair on the Crypto device, from physical devices this is usually 3060318c02bSDeclan Dohertydirectly from the devices processed queue, and for virtual device's from a 3076b1a74efSThierry Herbelot``rte_ring`` where processed operations are placed after being processed on the 3080318c02bSDeclan Dohertyenqueue call. 3090318c02bSDeclan Doherty 3100318c02bSDeclan Doherty 311fe84aaeeSAbhinandan GujjarPrivate data 312fe84aaeeSAbhinandan Gujjar~~~~~~~~~~~~ 313fe84aaeeSAbhinandan GujjarFor session-based operations, the set and get API provides a mechanism for an 3142d349f60SFiona Traheapplication to store and retrieve the private user data information stored along 3152d349f60SFiona Trahewith the crypto session. 316fe84aaeeSAbhinandan Gujjar 317fe84aaeeSAbhinandan GujjarFor example, suppose an application is submitting a crypto operation with a session 3182d349f60SFiona Traheassociated and wants to indicate private user data information which is required to be 319fe84aaeeSAbhinandan Gujjarused after completion of the crypto operation. In this case, the application can use 3202d349f60SFiona Trahethe set API to set the user data and retrieve it using get API. 321fe84aaeeSAbhinandan Gujjar 322fe84aaeeSAbhinandan Gujjar.. code-block:: c 323fe84aaeeSAbhinandan Gujjar 3242d349f60SFiona Trahe int rte_cryptodev_sym_session_set_user_data( 325fe84aaeeSAbhinandan Gujjar struct rte_cryptodev_sym_session *sess, void *data, uint16_t size); 326fe84aaeeSAbhinandan Gujjar 3272d349f60SFiona Trahe void * rte_cryptodev_sym_session_get_user_data( 328fe84aaeeSAbhinandan Gujjar struct rte_cryptodev_sym_session *sess); 329fe84aaeeSAbhinandan Gujjar 3309e5f5ecbSFan ZhangPlease note the ``size`` passed to set API cannot be bigger than the predefined 3319e5f5ecbSFan Zhang``user_data_sz`` when creating the session header mempool, otherwise the 3329e5f5ecbSFan Zhangfunction will return error. Also when ``user_data_sz`` was defined as ``0`` when 3339e5f5ecbSFan Zhangcreating the session header mempool, the get API will always return ``NULL``. 334fe84aaeeSAbhinandan Gujjar 3352d349f60SFiona TraheFor session-less mode, the private user data information can be placed along with the 336fe84aaeeSAbhinandan Gujjar``struct rte_crypto_op``. The ``rte_crypto_op::private_data_offset`` indicates the 337fe84aaeeSAbhinandan Gujjarstart of private data information. The offset is counted from the start of the 338fe84aaeeSAbhinandan Gujjarrte_crypto_op including other crypto information such as the IVs (since there can 339fe84aaeeSAbhinandan Gujjarbe an IV also for authentication). 340fe84aaeeSAbhinandan Gujjar 341fe84aaeeSAbhinandan Gujjar 3420318c02bSDeclan DohertyEnqueue / Dequeue Burst APIs 3430318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 3440318c02bSDeclan Doherty 3450318c02bSDeclan DohertyThe burst enqueue API uses a Crypto device identifier and a queue pair 3460318c02bSDeclan Dohertyidentifier to specify the Crypto device queue pair to schedule the processing on. 3470318c02bSDeclan DohertyThe ``nb_ops`` parameter is the number of operations to process which are 3480318c02bSDeclan Dohertysupplied in the ``ops`` array of ``rte_crypto_op`` structures. 3490318c02bSDeclan DohertyThe enqueue function returns the number of operations it actually enqueued for 3500318c02bSDeclan Dohertyprocessing, a return value equal to ``nb_ops`` means that all packets have been 3510318c02bSDeclan Dohertyenqueued. 3520318c02bSDeclan Doherty 3530318c02bSDeclan Doherty.. code-block:: c 3540318c02bSDeclan Doherty 3550318c02bSDeclan Doherty uint16_t rte_cryptodev_enqueue_burst(uint8_t dev_id, uint16_t qp_id, 3560318c02bSDeclan Doherty struct rte_crypto_op **ops, uint16_t nb_ops) 3570318c02bSDeclan Doherty 3580318c02bSDeclan DohertyThe dequeue API uses the same format as the enqueue API of processed but 3590318c02bSDeclan Dohertythe ``nb_ops`` and ``ops`` parameters are now used to specify the max processed 3600318c02bSDeclan Dohertyoperations the user wishes to retrieve and the location in which to store them. 3610318c02bSDeclan DohertyThe API call returns the actual number of processed operations returned, this 3620318c02bSDeclan Dohertycan never be larger than ``nb_ops``. 3630318c02bSDeclan Doherty 3640318c02bSDeclan Doherty.. code-block:: c 3650318c02bSDeclan Doherty 3660318c02bSDeclan Doherty uint16_t rte_cryptodev_dequeue_burst(uint8_t dev_id, uint16_t qp_id, 3670318c02bSDeclan Doherty struct rte_crypto_op **ops, uint16_t nb_ops) 3680318c02bSDeclan Doherty 3690318c02bSDeclan Doherty 3700318c02bSDeclan DohertyOperation Representation 3710318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~ 3720318c02bSDeclan Doherty 3730318c02bSDeclan DohertyAn Crypto operation is represented by an rte_crypto_op structure, which is a 3740318c02bSDeclan Dohertygeneric metadata container for all necessary information required for the 3750318c02bSDeclan DohertyCrypto operation to be processed on a particular Crypto device poll mode driver. 3760318c02bSDeclan Doherty 3770318c02bSDeclan Doherty.. figure:: img/crypto_op.* 3780318c02bSDeclan Doherty 3795209df0dSPablo de LaraThe operation structure includes the operation type, the operation status 3805209df0dSPablo de Laraand the session type (session-based/less), a reference to the operation 3815209df0dSPablo de Laraspecific data, which can vary in size and content depending on the operation 3825209df0dSPablo de Larabeing provisioned. It also contains the source mempool for the operation, 383b1f6192bSPablo de Laraif it allocated from a mempool. 3840318c02bSDeclan Doherty 3850318c02bSDeclan DohertyIf Crypto operations are allocated from a Crypto operation mempool, see next 3860318c02bSDeclan Dohertysection, there is also the ability to allocate private memory with the 3870318c02bSDeclan Dohertyoperation for applications purposes. 3880318c02bSDeclan Doherty 3890318c02bSDeclan DohertyApplication software is responsible for specifying all the operation specific 3900318c02bSDeclan Dohertyfields in the ``rte_crypto_op`` structure which are then used by the Crypto PMD 3910318c02bSDeclan Dohertyto process the requested operation. 3920318c02bSDeclan Doherty 3930318c02bSDeclan Doherty 3940318c02bSDeclan DohertyOperation Management and Allocation 3950318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 3960318c02bSDeclan Doherty 3970318c02bSDeclan DohertyThe cryptodev library provides an API set for managing Crypto operations which 3980318c02bSDeclan Dohertyutilize the Mempool Library to allocate operation buffers. Therefore, it ensures 399d629b7b5SJohn McNamarathat the crypto operation is interleaved optimally across the channels and 4000318c02bSDeclan Dohertyranks for optimal processing. 4010318c02bSDeclan DohertyA ``rte_crypto_op`` contains a field indicating the pool that it originated from. 4020318c02bSDeclan DohertyWhen calling ``rte_crypto_op_free(op)``, the operation returns to its original pool. 4030318c02bSDeclan Doherty 4040318c02bSDeclan Doherty.. code-block:: c 4050318c02bSDeclan Doherty 4060318c02bSDeclan Doherty extern struct rte_mempool * 4070318c02bSDeclan Doherty rte_crypto_op_pool_create(const char *name, enum rte_crypto_op_type type, 4080318c02bSDeclan Doherty unsigned nb_elts, unsigned cache_size, uint16_t priv_size, 4090318c02bSDeclan Doherty int socket_id); 4100318c02bSDeclan Doherty 4110318c02bSDeclan DohertyDuring pool creation ``rte_crypto_op_init()`` is called as a constructor to 4120318c02bSDeclan Dohertyinitialize each Crypto operation which subsequently calls 4130318c02bSDeclan Doherty``__rte_crypto_op_reset()`` to configure any operation type specific fields based 4140318c02bSDeclan Dohertyon the type parameter. 4150318c02bSDeclan Doherty 4160318c02bSDeclan Doherty 4170318c02bSDeclan Doherty``rte_crypto_op_alloc()`` and ``rte_crypto_op_bulk_alloc()`` are used to allocate 4180318c02bSDeclan DohertyCrypto operations of a specific type from a given Crypto operation mempool. 4190318c02bSDeclan Doherty``__rte_crypto_op_reset()`` is called on each operation before being returned to 4200318c02bSDeclan Dohertyallocate to a user so the operation is always in a good known state before use 4210318c02bSDeclan Dohertyby the application. 4220318c02bSDeclan Doherty 4230318c02bSDeclan Doherty.. code-block:: c 4240318c02bSDeclan Doherty 4250318c02bSDeclan Doherty struct rte_crypto_op *rte_crypto_op_alloc(struct rte_mempool *mempool, 4260318c02bSDeclan Doherty enum rte_crypto_op_type type) 4270318c02bSDeclan Doherty 4280318c02bSDeclan Doherty unsigned rte_crypto_op_bulk_alloc(struct rte_mempool *mempool, 4290318c02bSDeclan Doherty enum rte_crypto_op_type type, 4300318c02bSDeclan Doherty struct rte_crypto_op **ops, uint16_t nb_ops) 4310318c02bSDeclan Doherty 4320318c02bSDeclan Doherty``rte_crypto_op_free()`` is called by the application to return an operation to 4330318c02bSDeclan Dohertyits allocating pool. 4340318c02bSDeclan Doherty 4350318c02bSDeclan Doherty.. code-block:: c 4360318c02bSDeclan Doherty 4370318c02bSDeclan Doherty void rte_crypto_op_free(struct rte_crypto_op *op) 4380318c02bSDeclan Doherty 4390318c02bSDeclan Doherty 4400318c02bSDeclan DohertySymmetric Cryptography Support 4410318c02bSDeclan Doherty------------------------------ 4420318c02bSDeclan Doherty 4430318c02bSDeclan DohertyThe cryptodev library currently provides support for the following symmetric 4440318c02bSDeclan DohertyCrypto operations; cipher, authentication, including chaining of these 4450318c02bSDeclan Dohertyoperations, as well as also supporting AEAD operations. 4460318c02bSDeclan Doherty 4470318c02bSDeclan Doherty 4480318c02bSDeclan DohertySession and Session Management 449e3346dfcSPablo de Lara~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 4500318c02bSDeclan Doherty 451bb59dac7SPablo de LaraSessions are used in symmetric cryptographic processing to store the immutable 4520318c02bSDeclan Dohertydata defined in a cryptographic transform which is used in the operation 4530318c02bSDeclan Dohertyprocessing of a packet flow. Sessions are used to manage information such as 4540318c02bSDeclan Dohertyexpand cipher keys and HMAC IPADs and OPADs, which need to be calculated for a 4550318c02bSDeclan Dohertyparticular Crypto operation, but are immutable on a packet to packet basis for 4560318c02bSDeclan Dohertya flow. Crypto sessions cache this immutable data in a optimal way for the 4570318c02bSDeclan Dohertyunderlying PMD and this allows further acceleration of the offload of 4580318c02bSDeclan DohertyCrypto workloads. 4590318c02bSDeclan Doherty 4600318c02bSDeclan Doherty.. figure:: img/cryptodev_sym_sess.* 4610318c02bSDeclan Doherty 4621d6f8988SFan ZhangThe Crypto device framework provides APIs to create session mempool and allocate 4631d6f8988SFan Zhangand initialize sessions for crypto devices, where sessions are mempool objects. 4641d6f8988SFan ZhangThe application has to use ``rte_cryptodev_sym_session_pool_create()`` to 4651d6f8988SFan Zhangcreate the session header mempool that creates a mempool with proper element 4661d6f8988SFan Zhangsize automatically and stores necessary information for safely accessing the 4671d6f8988SFan Zhangsession in the mempool's private data field. 4680318c02bSDeclan Doherty 4691d6f8988SFan ZhangTo create a mempool for storing session private data, the application has two 4701d6f8988SFan Zhangoptions. The first is to create another mempool with elt size equal to or 4711d6f8988SFan Zhangbigger than the maximum session private data size of all crypto devices that 4721d6f8988SFan Zhangwill share the same session header. The creation of the mempool shall use the 4731d6f8988SFan Zhangtraditional ``rte_mempool_create()`` with the correct ``elt_size``. The other 4741d6f8988SFan Zhangoption is to change the ``elt_size`` parameter in 4751d6f8988SFan Zhang``rte_cryptodev_sym_session_pool_create()`` to the correct value. The first 4761d6f8988SFan Zhangoption is more complex to implement but may result in better memory usage as 4771d6f8988SFan Zhanga session header normally takes smaller memory footprint as the session private 4781d6f8988SFan Zhangdata. 4790318c02bSDeclan Doherty 480bb59dac7SPablo de LaraOnce the session mempools have been created, ``rte_cryptodev_sym_session_create()`` 481bb59dac7SPablo de Larais used to allocate an uninitialized session from the given mempool. 482bb59dac7SPablo de LaraThe session then must be initialized using ``rte_cryptodev_sym_session_init()`` 483bb59dac7SPablo de Larafor each of the required crypto devices. A symmetric transform chain 484bb59dac7SPablo de Larais used to specify the operation and its parameters. See the section below for 485bb59dac7SPablo de Laradetails on transforms. 4860318c02bSDeclan Doherty 487bb59dac7SPablo de LaraWhen a session is no longer used, user must call ``rte_cryptodev_sym_session_clear()`` 488bb59dac7SPablo de Larafor each of the crypto devices that are using the session, to free all driver 489bb59dac7SPablo de Laraprivate session data. Once this is done, session should be freed using 490bb59dac7SPablo de Lara``rte_cryptodev_sym_session_free`` which returns them to their mempool. 4910318c02bSDeclan Doherty 4920318c02bSDeclan Doherty 4930318c02bSDeclan DohertyTransforms and Transform Chaining 4940318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 4950318c02bSDeclan Doherty 4960318c02bSDeclan DohertySymmetric Crypto transforms (``rte_crypto_sym_xform``) are the mechanism used 4970318c02bSDeclan Dohertyto specify the details of the Crypto operation. For chaining of symmetric 4980318c02bSDeclan Dohertyoperations such as cipher encrypt and authentication generate, the next pointer 4990318c02bSDeclan Dohertyallows transform to be chained together. Crypto devices which support chaining 50048903a79SFiona Trahemust publish the chaining of symmetric Crypto operations feature flag. Allocation of the 501f43d3dbbSDavid Marchandxform structure is in the application domain. To allow future API extensions in a 50248903a79SFiona Trahebackwardly compatible manner, e.g. addition of a new parameter, the application should 50348903a79SFiona Trahezero the full xform struct before populating it. 5040318c02bSDeclan Doherty 50583984b7fSPablo de LaraCurrently there are three transforms types cipher, authentication and AEAD. 50683984b7fSPablo de LaraAlso it is important to note that the order in which the 5070318c02bSDeclan Dohertytransforms are passed indicates the order of the chaining. 5080318c02bSDeclan Doherty 5090318c02bSDeclan Doherty.. code-block:: c 5100318c02bSDeclan Doherty 5110318c02bSDeclan Doherty struct rte_crypto_sym_xform { 5120318c02bSDeclan Doherty struct rte_crypto_sym_xform *next; 5130318c02bSDeclan Doherty /**< next xform in chain */ 5140318c02bSDeclan Doherty enum rte_crypto_sym_xform_type type; 5150318c02bSDeclan Doherty /**< xform type */ 5160318c02bSDeclan Doherty union { 5170318c02bSDeclan Doherty struct rte_crypto_auth_xform auth; 5180318c02bSDeclan Doherty /**< Authentication / hash xform */ 5190318c02bSDeclan Doherty struct rte_crypto_cipher_xform cipher; 5200318c02bSDeclan Doherty /**< Cipher xform */ 52183984b7fSPablo de Lara struct rte_crypto_aead_xform aead; 52283984b7fSPablo de Lara /**< AEAD xform */ 5230318c02bSDeclan Doherty }; 5240318c02bSDeclan Doherty }; 5250318c02bSDeclan Doherty 5260318c02bSDeclan DohertyThe API does not place a limit on the number of transforms that can be chained 5270318c02bSDeclan Dohertytogether but this will be limited by the underlying Crypto device poll mode 5280318c02bSDeclan Dohertydriver which is processing the operation. 5290318c02bSDeclan Doherty 5300318c02bSDeclan Doherty.. figure:: img/crypto_xform_chain.* 5310318c02bSDeclan Doherty 5320318c02bSDeclan Doherty 5330318c02bSDeclan DohertySymmetric Operations 5340318c02bSDeclan Doherty~~~~~~~~~~~~~~~~~~~~ 5350318c02bSDeclan Doherty 5360318c02bSDeclan DohertyThe symmetric Crypto operation structure contains all the mutable data relating 5370318c02bSDeclan Dohertyto performing symmetric cryptographic processing on a referenced mbuf data 5380318c02bSDeclan Dohertybuffer. It is used for either cipher, authentication, AEAD and chained 5390318c02bSDeclan Dohertyoperations. 5400318c02bSDeclan Doherty 5410318c02bSDeclan DohertyAs a minimum the symmetric operation must have a source data buffer (``m_src``), 5425209df0dSPablo de Laraa valid session (or transform chain if in session-less mode) and the minimum 54383984b7fSPablo de Laraauthentication/ cipher/ AEAD parameters required depending on the type of operation 5445209df0dSPablo de Laraspecified in the session or the transform 5450318c02bSDeclan Dohertychain. 5460318c02bSDeclan Doherty 5470318c02bSDeclan Doherty.. code-block:: c 5480318c02bSDeclan Doherty 5490318c02bSDeclan Doherty struct rte_crypto_sym_op { 5500318c02bSDeclan Doherty struct rte_mbuf *m_src; 5510318c02bSDeclan Doherty struct rte_mbuf *m_dst; 5520318c02bSDeclan Doherty 5530318c02bSDeclan Doherty union { 5540318c02bSDeclan Doherty struct rte_cryptodev_sym_session *session; 5550318c02bSDeclan Doherty /**< Handle for the initialised session context */ 5560318c02bSDeclan Doherty struct rte_crypto_sym_xform *xform; 5570318c02bSDeclan Doherty /**< Session-less API Crypto operation parameters */ 5580318c02bSDeclan Doherty }; 5590318c02bSDeclan Doherty 560b59502a5SPablo de Lara union { 561b59502a5SPablo de Lara struct { 562b59502a5SPablo de Lara struct { 563b59502a5SPablo de Lara uint32_t offset; 564b59502a5SPablo de Lara uint32_t length; 565b59502a5SPablo de Lara } data; /**< Data offsets and length for AEAD */ 566b59502a5SPablo de Lara 567b59502a5SPablo de Lara struct { 568b59502a5SPablo de Lara uint8_t *data; 569c4509373SSantosh Shukla rte_iova_t phys_addr; 570b59502a5SPablo de Lara } digest; /**< Digest parameters */ 571b59502a5SPablo de Lara 572b59502a5SPablo de Lara struct { 573b59502a5SPablo de Lara uint8_t *data; 574c4509373SSantosh Shukla rte_iova_t phys_addr; 575b59502a5SPablo de Lara } aad; 576b59502a5SPablo de Lara /**< Additional authentication parameters */ 577b59502a5SPablo de Lara } aead; 578b59502a5SPablo de Lara 579b59502a5SPablo de Lara struct { 5800318c02bSDeclan Doherty struct { 5810318c02bSDeclan Doherty struct { 5820318c02bSDeclan Doherty uint32_t offset; 5830318c02bSDeclan Doherty uint32_t length; 5840318c02bSDeclan Doherty } data; /**< Data offsets and length for ciphering */ 5850318c02bSDeclan Doherty } cipher; 5860318c02bSDeclan Doherty 5870318c02bSDeclan Doherty struct { 5880318c02bSDeclan Doherty struct { 5890318c02bSDeclan Doherty uint32_t offset; 5900318c02bSDeclan Doherty uint32_t length; 591b59502a5SPablo de Lara } data; 592b59502a5SPablo de Lara /**< Data offsets and length for authentication */ 5930318c02bSDeclan Doherty 5940318c02bSDeclan Doherty struct { 5950318c02bSDeclan Doherty uint8_t *data; 596c4509373SSantosh Shukla rte_iova_t phys_addr; 5970318c02bSDeclan Doherty } digest; /**< Digest parameters */ 5980318c02bSDeclan Doherty } auth; 599b59502a5SPablo de Lara }; 600b59502a5SPablo de Lara }; 601b59502a5SPablo de Lara }; 6020318c02bSDeclan Doherty 6037adf992fSMarcin SmoczynskiSynchronous mode 6047adf992fSMarcin Smoczynski---------------- 6057adf992fSMarcin Smoczynski 6067adf992fSMarcin SmoczynskiSome cryptodevs support synchronous mode alongside with a standard asynchronous 6077adf992fSMarcin Smoczynskimode. In that case operations are performed directly when calling 6087adf992fSMarcin Smoczynski``rte_cryptodev_sym_cpu_crypto_process`` method instead of enqueuing and 6097adf992fSMarcin Smoczynskidequeuing an operation before. This mode of operation allows cryptodevs which 6107adf992fSMarcin Smoczynskiutilize CPU cryptographic acceleration to have significant performance boost 6117adf992fSMarcin Smoczynskicomparing to standard asynchronous approach. Cryptodevs supporting synchronous 6127adf992fSMarcin Smoczynskimode have ``RTE_CRYPTODEV_FF_SYM_CPU_CRYPTO`` feature flag set. 6137adf992fSMarcin Smoczynski 6147adf992fSMarcin SmoczynskiTo perform a synchronous operation a call to 6157adf992fSMarcin Smoczynski``rte_cryptodev_sym_cpu_crypto_process`` has to be made with vectorized 6167adf992fSMarcin Smoczynskioperation descriptor (``struct rte_crypto_sym_vec``) containing: 6177adf992fSMarcin Smoczynski 6187adf992fSMarcin Smoczynski- ``num`` - number of operations to perform, 6197adf992fSMarcin Smoczynski- pointer to an array of size ``num`` containing a scatter-gather list 6207adf992fSMarcin Smoczynski descriptors of performed operations (``struct rte_crypto_sgl``). Each instance 6217adf992fSMarcin Smoczynski of ``struct rte_crypto_sgl`` consists of a number of segments and a pointer to 6227adf992fSMarcin Smoczynski an array of segment descriptors ``struct rte_crypto_vec``; 623*8d928d47SFan Zhang- pointers to arrays of size ``num`` containing IV, AAD and digest information 624*8d928d47SFan Zhang in the ``cpu_crypto`` sub-structure, 6257adf992fSMarcin Smoczynski- pointer to an array of size ``num`` where status information will be stored 6267adf992fSMarcin Smoczynski for each operation. 6277adf992fSMarcin Smoczynski 6287adf992fSMarcin SmoczynskiFunction returns a number of successfully completed operations and sets 6297adf992fSMarcin Smoczynskiappropriate status number for each operation in the status array provided as 6307adf992fSMarcin Smoczynskia call argument. Status different than zero must be treated as error. 6317adf992fSMarcin Smoczynski 6327adf992fSMarcin SmoczynskiFor more details, e.g. how to convert an mbuf to an SGL, please refer to an 6337adf992fSMarcin Smoczynskiexample usage in the IPsec library implementation. 6347adf992fSMarcin Smoczynski 63531850d26SPablo de LaraSample code 63631850d26SPablo de Lara----------- 63731850d26SPablo de Lara 63831850d26SPablo de LaraThere are various sample applications that show how to use the cryptodev library, 63931850d26SPablo de Larasuch as the L2fwd with Crypto sample application (L2fwd-crypto) and 640d629b7b5SJohn McNamarathe IPsec Security Gateway application (ipsec-secgw). 64131850d26SPablo de Lara 64231850d26SPablo de LaraWhile these applications demonstrate how an application can be created to perform 64331850d26SPablo de Larageneric crypto operation, the required complexity hides the basic steps of 64431850d26SPablo de Larahow to use the cryptodev APIs. 64531850d26SPablo de Lara 64631850d26SPablo de LaraThe following sample code shows the basic steps to encrypt several buffers 64731850d26SPablo de Larawith AES-CBC (although performing other crypto operations is similar), 64831850d26SPablo de Larausing one of the crypto PMDs available in DPDK. 64931850d26SPablo de Lara 65031850d26SPablo de Lara.. code-block:: c 65131850d26SPablo de Lara 65231850d26SPablo de Lara /* 65331850d26SPablo de Lara * Simple example to encrypt several buffers with AES-CBC using 65431850d26SPablo de Lara * the Cryptodev APIs. 65531850d26SPablo de Lara */ 65631850d26SPablo de Lara 65731850d26SPablo de Lara #define MAX_SESSIONS 1024 65831850d26SPablo de Lara #define NUM_MBUFS 1024 65931850d26SPablo de Lara #define POOL_CACHE_SIZE 128 66031850d26SPablo de Lara #define BURST_SIZE 32 66131850d26SPablo de Lara #define BUFFER_SIZE 1024 66231850d26SPablo de Lara #define AES_CBC_IV_LENGTH 16 66331850d26SPablo de Lara #define AES_CBC_KEY_LENGTH 16 66431850d26SPablo de Lara #define IV_OFFSET (sizeof(struct rte_crypto_op) + \ 66531850d26SPablo de Lara sizeof(struct rte_crypto_sym_op)) 66631850d26SPablo de Lara 6671d6f8988SFan Zhang struct rte_mempool *mbuf_pool, *crypto_op_pool; 6681d6f8988SFan Zhang struct rte_mempool *session_pool, *session_priv_pool; 66931850d26SPablo de Lara unsigned int session_size; 67031850d26SPablo de Lara int ret; 67131850d26SPablo de Lara 67231850d26SPablo de Lara /* Initialize EAL. */ 67331850d26SPablo de Lara ret = rte_eal_init(argc, argv); 67431850d26SPablo de Lara if (ret < 0) 67531850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Invalid EAL arguments\n"); 67631850d26SPablo de Lara 67731850d26SPablo de Lara uint8_t socket_id = rte_socket_id(); 67831850d26SPablo de Lara 67931850d26SPablo de Lara /* Create the mbuf pool. */ 68031850d26SPablo de Lara mbuf_pool = rte_pktmbuf_pool_create("mbuf_pool", 68131850d26SPablo de Lara NUM_MBUFS, 68231850d26SPablo de Lara POOL_CACHE_SIZE, 68331850d26SPablo de Lara 0, 68431850d26SPablo de Lara RTE_MBUF_DEFAULT_BUF_SIZE, 68531850d26SPablo de Lara socket_id); 68631850d26SPablo de Lara if (mbuf_pool == NULL) 68731850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Cannot create mbuf pool\n"); 68831850d26SPablo de Lara 68931850d26SPablo de Lara /* 69031850d26SPablo de Lara * The IV is always placed after the crypto operation, 69131850d26SPablo de Lara * so some private data is required to be reserved. 69231850d26SPablo de Lara */ 69331850d26SPablo de Lara unsigned int crypto_op_private_data = AES_CBC_IV_LENGTH; 69431850d26SPablo de Lara 69531850d26SPablo de Lara /* Create crypto operation pool. */ 69631850d26SPablo de Lara crypto_op_pool = rte_crypto_op_pool_create("crypto_op_pool", 69731850d26SPablo de Lara RTE_CRYPTO_OP_TYPE_SYMMETRIC, 69831850d26SPablo de Lara NUM_MBUFS, 69931850d26SPablo de Lara POOL_CACHE_SIZE, 70031850d26SPablo de Lara crypto_op_private_data, 70131850d26SPablo de Lara socket_id); 70231850d26SPablo de Lara if (crypto_op_pool == NULL) 70331850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Cannot create crypto op pool\n"); 70431850d26SPablo de Lara 70531850d26SPablo de Lara /* Create the virtual crypto device. */ 70631850d26SPablo de Lara char args[128]; 70731850d26SPablo de Lara const char *crypto_name = "crypto_aesni_mb0"; 70831850d26SPablo de Lara snprintf(args, sizeof(args), "socket_id=%d", socket_id); 70931850d26SPablo de Lara ret = rte_vdev_init(crypto_name, args); 71031850d26SPablo de Lara if (ret != 0) 71131850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Cannot create virtual device"); 71231850d26SPablo de Lara 71331850d26SPablo de Lara uint8_t cdev_id = rte_cryptodev_get_dev_id(crypto_name); 71431850d26SPablo de Lara 71531850d26SPablo de Lara /* Get private session data size. */ 716a106fcceSPablo de Lara session_size = rte_cryptodev_sym_get_private_session_size(cdev_id); 71731850d26SPablo de Lara 7181d6f8988SFan Zhang #ifdef USE_TWO_MEMPOOLS 7191d6f8988SFan Zhang /* Create session mempool for the session header. */ 7201d6f8988SFan Zhang session_pool = rte_cryptodev_sym_session_pool_create("session_pool", 7211d6f8988SFan Zhang MAX_SESSIONS, 7221d6f8988SFan Zhang 0, 7231d6f8988SFan Zhang POOL_CACHE_SIZE, 7241d6f8988SFan Zhang 0, 7251d6f8988SFan Zhang socket_id); 7261d6f8988SFan Zhang 72731850d26SPablo de Lara /* 7281d6f8988SFan Zhang * Create session private data mempool for the 72931850d26SPablo de Lara * private session data for the crypto device. 73031850d26SPablo de Lara */ 7311d6f8988SFan Zhang session_priv_pool = rte_mempool_create("session_pool", 7321d6f8988SFan Zhang MAX_SESSIONS, 73331850d26SPablo de Lara session_size, 73431850d26SPablo de Lara POOL_CACHE_SIZE, 73531850d26SPablo de Lara 0, NULL, NULL, NULL, 73631850d26SPablo de Lara NULL, socket_id, 73731850d26SPablo de Lara 0); 73831850d26SPablo de Lara 7391d6f8988SFan Zhang #else 7401d6f8988SFan Zhang /* Use of the same mempool for session header and private data */ 7411d6f8988SFan Zhang session_pool = rte_cryptodev_sym_session_pool_create("session_pool", 7421d6f8988SFan Zhang MAX_SESSIONS * 2, 7431d6f8988SFan Zhang session_size, 7441d6f8988SFan Zhang POOL_CACHE_SIZE, 7451d6f8988SFan Zhang 0, 7461d6f8988SFan Zhang socket_id); 7471d6f8988SFan Zhang 7481d6f8988SFan Zhang session_priv_pool = session_pool; 7491d6f8988SFan Zhang 7501d6f8988SFan Zhang #endif 7511d6f8988SFan Zhang 75231850d26SPablo de Lara /* Configure the crypto device. */ 75331850d26SPablo de Lara struct rte_cryptodev_config conf = { 75431850d26SPablo de Lara .nb_queue_pairs = 1, 75531850d26SPablo de Lara .socket_id = socket_id 75631850d26SPablo de Lara }; 7571d6f8988SFan Zhang 75831850d26SPablo de Lara struct rte_cryptodev_qp_conf qp_conf = { 759725d2a7fSFan Zhang .nb_descriptors = 2048, 760725d2a7fSFan Zhang .mp_session = session_pool, 7611d6f8988SFan Zhang .mp_session_private = session_priv_pool 76231850d26SPablo de Lara }; 76331850d26SPablo de Lara 76431850d26SPablo de Lara if (rte_cryptodev_configure(cdev_id, &conf) < 0) 76531850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Failed to configure cryptodev %u", cdev_id); 76631850d26SPablo de Lara 767725d2a7fSFan Zhang if (rte_cryptodev_queue_pair_setup(cdev_id, 0, &qp_conf, socket_id) < 0) 76831850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Failed to setup queue pair\n"); 76931850d26SPablo de Lara 77031850d26SPablo de Lara if (rte_cryptodev_start(cdev_id) < 0) 77131850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Failed to start device\n"); 77231850d26SPablo de Lara 77331850d26SPablo de Lara /* Create the crypto transform. */ 77431850d26SPablo de Lara uint8_t cipher_key[16] = {0}; 77531850d26SPablo de Lara struct rte_crypto_sym_xform cipher_xform = { 77631850d26SPablo de Lara .next = NULL, 77731850d26SPablo de Lara .type = RTE_CRYPTO_SYM_XFORM_CIPHER, 77831850d26SPablo de Lara .cipher = { 77931850d26SPablo de Lara .op = RTE_CRYPTO_CIPHER_OP_ENCRYPT, 78031850d26SPablo de Lara .algo = RTE_CRYPTO_CIPHER_AES_CBC, 78131850d26SPablo de Lara .key = { 78231850d26SPablo de Lara .data = cipher_key, 78331850d26SPablo de Lara .length = AES_CBC_KEY_LENGTH 78431850d26SPablo de Lara }, 78531850d26SPablo de Lara .iv = { 78631850d26SPablo de Lara .offset = IV_OFFSET, 78731850d26SPablo de Lara .length = AES_CBC_IV_LENGTH 78831850d26SPablo de Lara } 78931850d26SPablo de Lara } 79031850d26SPablo de Lara }; 79131850d26SPablo de Lara 79231850d26SPablo de Lara /* Create crypto session and initialize it for the crypto device. */ 79331850d26SPablo de Lara struct rte_cryptodev_sym_session *session; 79431850d26SPablo de Lara session = rte_cryptodev_sym_session_create(session_pool); 79531850d26SPablo de Lara if (session == NULL) 79631850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Session could not be created\n"); 79731850d26SPablo de Lara 79831850d26SPablo de Lara if (rte_cryptodev_sym_session_init(cdev_id, session, 7991d6f8988SFan Zhang &cipher_xform, session_priv_pool) < 0) 80031850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Session could not be initialized " 80131850d26SPablo de Lara "for the crypto device\n"); 80231850d26SPablo de Lara 80331850d26SPablo de Lara /* Get a burst of crypto operations. */ 80431850d26SPablo de Lara struct rte_crypto_op *crypto_ops[BURST_SIZE]; 80531850d26SPablo de Lara if (rte_crypto_op_bulk_alloc(crypto_op_pool, 80631850d26SPablo de Lara RTE_CRYPTO_OP_TYPE_SYMMETRIC, 80731850d26SPablo de Lara crypto_ops, BURST_SIZE) == 0) 80831850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Not enough crypto operations available\n"); 80931850d26SPablo de Lara 81031850d26SPablo de Lara /* Get a burst of mbufs. */ 81131850d26SPablo de Lara struct rte_mbuf *mbufs[BURST_SIZE]; 81231850d26SPablo de Lara if (rte_pktmbuf_alloc_bulk(mbuf_pool, mbufs, BURST_SIZE) < 0) 81331850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Not enough mbufs available"); 81431850d26SPablo de Lara 81531850d26SPablo de Lara /* Initialize the mbufs and append them to the crypto operations. */ 81631850d26SPablo de Lara unsigned int i; 81731850d26SPablo de Lara for (i = 0; i < BURST_SIZE; i++) { 81831850d26SPablo de Lara if (rte_pktmbuf_append(mbufs[i], BUFFER_SIZE) == NULL) 81931850d26SPablo de Lara rte_exit(EXIT_FAILURE, "Not enough room in the mbuf\n"); 82031850d26SPablo de Lara crypto_ops[i]->sym->m_src = mbufs[i]; 82131850d26SPablo de Lara } 82231850d26SPablo de Lara 82331850d26SPablo de Lara /* Set up the crypto operations. */ 82431850d26SPablo de Lara for (i = 0; i < BURST_SIZE; i++) { 82531850d26SPablo de Lara struct rte_crypto_op *op = crypto_ops[i]; 82631850d26SPablo de Lara /* Modify bytes of the IV at the end of the crypto operation */ 82731850d26SPablo de Lara uint8_t *iv_ptr = rte_crypto_op_ctod_offset(op, uint8_t *, 82831850d26SPablo de Lara IV_OFFSET); 82931850d26SPablo de Lara 83031850d26SPablo de Lara generate_random_bytes(iv_ptr, AES_CBC_IV_LENGTH); 83131850d26SPablo de Lara 83231850d26SPablo de Lara op->sym->cipher.data.offset = 0; 83331850d26SPablo de Lara op->sym->cipher.data.length = BUFFER_SIZE; 83431850d26SPablo de Lara 83531850d26SPablo de Lara /* Attach the crypto session to the operation */ 83631850d26SPablo de Lara rte_crypto_op_attach_sym_session(op, session); 83731850d26SPablo de Lara } 83831850d26SPablo de Lara 83931850d26SPablo de Lara /* Enqueue the crypto operations in the crypto device. */ 84031850d26SPablo de Lara uint16_t num_enqueued_ops = rte_cryptodev_enqueue_burst(cdev_id, 0, 84131850d26SPablo de Lara crypto_ops, BURST_SIZE); 84231850d26SPablo de Lara 84331850d26SPablo de Lara /* 84431850d26SPablo de Lara * Dequeue the crypto operations until all the operations 845d629b7b5SJohn McNamara * are processed in the crypto device. 84631850d26SPablo de Lara */ 84731850d26SPablo de Lara uint16_t num_dequeued_ops, total_num_dequeued_ops = 0; 84831850d26SPablo de Lara do { 84931850d26SPablo de Lara struct rte_crypto_op *dequeued_ops[BURST_SIZE]; 85031850d26SPablo de Lara num_dequeued_ops = rte_cryptodev_dequeue_burst(cdev_id, 0, 85131850d26SPablo de Lara dequeued_ops, BURST_SIZE); 85231850d26SPablo de Lara total_num_dequeued_ops += num_dequeued_ops; 85331850d26SPablo de Lara 85431850d26SPablo de Lara /* Check if operation was processed successfully */ 85531850d26SPablo de Lara for (i = 0; i < num_dequeued_ops; i++) { 85631850d26SPablo de Lara if (dequeued_ops[i]->status != RTE_CRYPTO_OP_STATUS_SUCCESS) 85731850d26SPablo de Lara rte_exit(EXIT_FAILURE, 85831850d26SPablo de Lara "Some operations were not processed correctly"); 85931850d26SPablo de Lara } 86031850d26SPablo de Lara 86131850d26SPablo de Lara rte_mempool_put_bulk(crypto_op_pool, (void **)dequeued_ops, 86231850d26SPablo de Lara num_dequeued_ops); 86331850d26SPablo de Lara } while (total_num_dequeued_ops < num_enqueued_ops); 86431850d26SPablo de Lara 8650318c02bSDeclan DohertyAsymmetric Cryptography 8660318c02bSDeclan Doherty----------------------- 8670318c02bSDeclan Doherty 868b9209dc2SShally VermaThe cryptodev library currently provides support for the following asymmetric 869b9209dc2SShally VermaCrypto operations; RSA, Modular exponentiation and inversion, Diffie-Hellman 870b9209dc2SShally Vermapublic and/or private key generation and shared secret compute, DSA Signature 871b9209dc2SShally Vermageneration and verification. 872b9209dc2SShally Verma 873b9209dc2SShally VermaSession and Session Management 874b9209dc2SShally Verma~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 875b9209dc2SShally Verma 876b9209dc2SShally VermaSessions are used in asymmetric cryptographic processing to store the immutable 877b9209dc2SShally Vermadata defined in asymmetric cryptographic transform which is further used in the 878b9209dc2SShally Vermaoperation processing. Sessions typically stores information, such as, public 879b9209dc2SShally Vermaand private key information or domain params or prime modulus data i.e. immutable 880b9209dc2SShally Vermaacross data sets. Crypto sessions cache this immutable data in a optimal way for the 881b9209dc2SShally Vermaunderlying PMD and this allows further acceleration of the offload of Crypto workloads. 882b9209dc2SShally Verma 883b9209dc2SShally VermaLike symmetric, the Crypto device framework provides APIs to allocate and initialize 884b9209dc2SShally Vermaasymmetric sessions for crypto devices, where sessions are mempool objects. 885b9209dc2SShally VermaIt is the application's responsibility to create and manage the session mempools. 886b9209dc2SShally VermaApplication using both symmetric and asymmetric sessions should allocate and maintain 887b9209dc2SShally Vermadifferent sessions pools for each type. 888b9209dc2SShally Verma 889b9209dc2SShally VermaAn application can use ``rte_cryptodev_get_asym_session_private_size()`` to 890b9209dc2SShally Vermaget the private size of asymmetric session on a given crypto device. This 891b9209dc2SShally Vermafunction would allow an application to calculate the max device asymmetric 892b9209dc2SShally Vermasession size of all crypto devices to create a single session mempool. 893b9209dc2SShally VermaIf instead an application creates multiple asymmetric session mempools, 894b9209dc2SShally Vermathe Crypto device framework also provides ``rte_cryptodev_asym_get_header_session_size()`` to get 895b9209dc2SShally Vermathe size of an uninitialized session. 896b9209dc2SShally Verma 897b9209dc2SShally VermaOnce the session mempools have been created, ``rte_cryptodev_asym_session_create()`` 898b9209dc2SShally Vermais used to allocate an uninitialized asymmetric session from the given mempool. 899b9209dc2SShally VermaThe session then must be initialized using ``rte_cryptodev_asym_session_init()`` 900b9209dc2SShally Vermafor each of the required crypto devices. An asymmetric transform chain 901b9209dc2SShally Vermais used to specify the operation and its parameters. See the section below for 902b9209dc2SShally Vermadetails on transforms. 903b9209dc2SShally Verma 904b9209dc2SShally VermaWhen a session is no longer used, user must call ``rte_cryptodev_asym_session_clear()`` 905b9209dc2SShally Vermafor each of the crypto devices that are using the session, to free all driver 906b9209dc2SShally Vermaprivate asymmetric session data. Once this is done, session should be freed using 907b9209dc2SShally Verma``rte_cryptodev_asym_session_free()`` which returns them to their mempool. 908b9209dc2SShally Verma 909b9209dc2SShally VermaAsymmetric Sessionless Support 910b9209dc2SShally Verma~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 911f2b2a449SArek Kusztal 912f2b2a449SArek KusztalAsymmetric crypto framework supports session-less operations as well. 913f2b2a449SArek Kusztal 914f2b2a449SArek KusztalFields that should be set by user are: 915f2b2a449SArek Kusztal 916f2b2a449SArek KusztalMember xform of struct rte_crypto_asym_op should point to the user created rte_crypto_asym_xform. 917f2b2a449SArek KusztalNote that rte_crypto_asym_xform should be immutable for the lifetime of associated crypto_op. 918f2b2a449SArek Kusztal 919f2b2a449SArek KusztalMember sess_type of rte_crypto_op should also be set to RTE_CRYPTO_OP_SESSIONLESS. 920b9209dc2SShally Verma 921b9209dc2SShally VermaTransforms and Transform Chaining 922b9209dc2SShally Verma~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 923b9209dc2SShally Verma 924b9209dc2SShally VermaAsymmetric Crypto transforms (``rte_crypto_asym_xform``) are the mechanism used 925b9209dc2SShally Vermato specify the details of the asymmetric Crypto operation. Next pointer within 926b9209dc2SShally Vermaxform allows transform to be chained together. Also it is important to note that 92748903a79SFiona Trahethe order in which the transforms are passed indicates the order of the chaining. Allocation 928f43d3dbbSDavid Marchandof the xform structure is in the application domain. To allow future API extensions in a 92948903a79SFiona Trahebackwardly compatible manner, e.g. addition of a new parameter, the application should 93048903a79SFiona Trahezero the full xform struct before populating it. 931b9209dc2SShally Verma 932b9209dc2SShally VermaNot all asymmetric crypto xforms are supported for chaining. Currently supported 933b9209dc2SShally Vermaasymmetric crypto chaining is Diffie-Hellman private key generation followed by 934b9209dc2SShally Vermapublic generation. Also, currently API does not support chaining of symmetric and 935d629b7b5SJohn McNamaraasymmetric crypto xforms. 936b9209dc2SShally Verma 937b9209dc2SShally VermaEach xform defines specific asymmetric crypto algo. Currently supported are: 938b9209dc2SShally Verma* RSA 939b9209dc2SShally Verma* Modular operations (Exponentiation and Inverse) 940b9209dc2SShally Verma* Diffie-Hellman 941b9209dc2SShally Verma* DSA 942b9209dc2SShally Verma* None - special case where PMD may support a passthrough mode. More for diagnostic purpose 943b9209dc2SShally Verma 944b9209dc2SShally VermaSee *DPDK API Reference* for details on each rte_crypto_xxx_xform struct 945b9209dc2SShally Verma 946b9209dc2SShally VermaAsymmetric Operations 947b9209dc2SShally Verma~~~~~~~~~~~~~~~~~~~~~ 948b9209dc2SShally Verma 949b9209dc2SShally VermaThe asymmetric Crypto operation structure contains all the mutable data relating 950b9209dc2SShally Vermato asymmetric cryptographic processing on an input data buffer. It uses either 951b9209dc2SShally VermaRSA, Modular, Diffie-Hellman or DSA operations depending upon session it is attached 952b9209dc2SShally Vermato. 953b9209dc2SShally Verma 954b9209dc2SShally VermaEvery operation must carry a valid session handle which further carries information 955b9209dc2SShally Vermaon xform or xform-chain to be performed on op. Every xform type defines its own set 956b9209dc2SShally Vermaof operational params in their respective rte_crypto_xxx_op_param struct. Depending 957b9209dc2SShally Vermaon xform information within session, PMD picks up and process respective op_param 958b9209dc2SShally Vermastruct. 959b9209dc2SShally VermaUnlike symmetric, asymmetric operations do not use mbufs for input/output. 960b9209dc2SShally VermaThey operate on data buffer of type ``rte_crypto_param``. 961b9209dc2SShally Verma 962b9209dc2SShally VermaSee *DPDK API Reference* for details on each rte_crypto_xxx_op_param struct 963b9209dc2SShally Verma 964b9209dc2SShally VermaAsymmetric crypto Sample code 965b9209dc2SShally Verma----------------------------- 966b9209dc2SShally Verma 967b9209dc2SShally VermaThere's a unit test application test_cryptodev_asym.c inside unit test framework that 968b9209dc2SShally Vermashow how to setup and process asymmetric operations using cryptodev library. 969b9209dc2SShally Verma 970b9209dc2SShally VermaThe following sample code shows the basic steps to compute modular exponentiation 971b9209dc2SShally Vermausing 1024-bit modulus length using openssl PMD available in DPDK (performing other 972b9209dc2SShally Vermacrypto operations is similar except change to respective op and xform setup). 973b9209dc2SShally Verma 974b9209dc2SShally Verma.. code-block:: c 975b9209dc2SShally Verma 976b9209dc2SShally Verma /* 977b9209dc2SShally Verma * Simple example to compute modular exponentiation with 1024-bit key 978b9209dc2SShally Verma * 979b9209dc2SShally Verma */ 980b9209dc2SShally Verma #define MAX_ASYM_SESSIONS 10 981b9209dc2SShally Verma #define NUM_ASYM_BUFS 10 982b9209dc2SShally Verma 983b9209dc2SShally Verma struct rte_mempool *crypto_op_pool, *asym_session_pool; 984b9209dc2SShally Verma unsigned int asym_session_size; 985b9209dc2SShally Verma int ret; 986b9209dc2SShally Verma 987b9209dc2SShally Verma /* Initialize EAL. */ 988b9209dc2SShally Verma ret = rte_eal_init(argc, argv); 989b9209dc2SShally Verma if (ret < 0) 990b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Invalid EAL arguments\n"); 991b9209dc2SShally Verma 992b9209dc2SShally Verma uint8_t socket_id = rte_socket_id(); 993b9209dc2SShally Verma 994b9209dc2SShally Verma /* Create crypto operation pool. */ 995b9209dc2SShally Verma crypto_op_pool = rte_crypto_op_pool_create( 996b9209dc2SShally Verma "crypto_op_pool", 997b9209dc2SShally Verma RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 998b9209dc2SShally Verma NUM_ASYM_BUFS, 0, 0, 999b9209dc2SShally Verma socket_id); 1000b9209dc2SShally Verma if (crypto_op_pool == NULL) 1001b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Cannot create crypto op pool\n"); 1002b9209dc2SShally Verma 1003b9209dc2SShally Verma /* Create the virtual crypto device. */ 1004b9209dc2SShally Verma char args[128]; 1005b9209dc2SShally Verma const char *crypto_name = "crypto_openssl"; 1006b9209dc2SShally Verma snprintf(args, sizeof(args), "socket_id=%d", socket_id); 1007b9209dc2SShally Verma ret = rte_vdev_init(crypto_name, args); 1008b9209dc2SShally Verma if (ret != 0) 1009b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Cannot create virtual device"); 1010b9209dc2SShally Verma 1011b9209dc2SShally Verma uint8_t cdev_id = rte_cryptodev_get_dev_id(crypto_name); 1012b9209dc2SShally Verma 1013b9209dc2SShally Verma /* Get private asym session data size. */ 1014b9209dc2SShally Verma asym_session_size = rte_cryptodev_get_asym_private_session_size(cdev_id); 1015b9209dc2SShally Verma 1016b9209dc2SShally Verma /* 1017b9209dc2SShally Verma * Create session mempool, with two objects per session, 1018b9209dc2SShally Verma * one for the session header and another one for the 1019b9209dc2SShally Verma * private asym session data for the crypto device. 1020b9209dc2SShally Verma */ 1021b9209dc2SShally Verma asym_session_pool = rte_mempool_create("asym_session_pool", 1022b9209dc2SShally Verma MAX_ASYM_SESSIONS * 2, 1023b9209dc2SShally Verma asym_session_size, 1024b9209dc2SShally Verma 0, 1025b9209dc2SShally Verma 0, NULL, NULL, NULL, 1026b9209dc2SShally Verma NULL, socket_id, 1027b9209dc2SShally Verma 0); 1028b9209dc2SShally Verma 1029b9209dc2SShally Verma /* Configure the crypto device. */ 1030b9209dc2SShally Verma struct rte_cryptodev_config conf = { 1031b9209dc2SShally Verma .nb_queue_pairs = 1, 1032b9209dc2SShally Verma .socket_id = socket_id 1033b9209dc2SShally Verma }; 1034b9209dc2SShally Verma struct rte_cryptodev_qp_conf qp_conf = { 1035b9209dc2SShally Verma .nb_descriptors = 2048 1036b9209dc2SShally Verma }; 1037b9209dc2SShally Verma 1038b9209dc2SShally Verma if (rte_cryptodev_configure(cdev_id, &conf) < 0) 1039b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Failed to configure cryptodev %u", cdev_id); 1040b9209dc2SShally Verma 1041b9209dc2SShally Verma if (rte_cryptodev_queue_pair_setup(cdev_id, 0, &qp_conf, 1042b9209dc2SShally Verma socket_id, asym_session_pool) < 0) 1043b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Failed to setup queue pair\n"); 1044b9209dc2SShally Verma 1045b9209dc2SShally Verma if (rte_cryptodev_start(cdev_id) < 0) 1046b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Failed to start device\n"); 1047b9209dc2SShally Verma 1048b9209dc2SShally Verma /* Setup crypto xform to do modular exponentiation with 1024 bit 1049b9209dc2SShally Verma * length modulus 1050b9209dc2SShally Verma */ 1051b9209dc2SShally Verma struct rte_crypto_asym_xform modex_xform = { 1052b9209dc2SShally Verma .next = NULL, 1053b9209dc2SShally Verma .xform_type = RTE_CRYPTO_ASYM_XFORM_MODEX, 1054b9209dc2SShally Verma .modex = { 1055b9209dc2SShally Verma .modulus = { 1056b9209dc2SShally Verma .data = 1057b9209dc2SShally Verma (uint8_t *) 1058b9209dc2SShally Verma ("\xb3\xa1\xaf\xb7\x13\x08\x00\x0a\x35\xdc\x2b\x20\x8d" 1059b9209dc2SShally Verma "\xa1\xb5\xce\x47\x8a\xc3\x80\xf4\x7d\x4a\xa2\x62\xfd\x61\x7f" 1060b9209dc2SShally Verma "\xb5\xa8\xde\x0a\x17\x97\xa0\xbf\xdf\x56\x5a\x3d\x51\x56\x4f" 1061b9209dc2SShally Verma "\x70\x70\x3f\x63\x6a\x44\x5b\xad\x84\x0d\x3f\x27\x6e\x3b\x34" 1062b9209dc2SShally Verma "\x91\x60\x14\xb9\xaa\x72\xfd\xa3\x64\xd2\x03\xa7\x53\x87\x9e" 1063b9209dc2SShally Verma "\x88\x0b\xc1\x14\x93\x1a\x62\xff\xb1\x5d\x74\xcd\x59\x63\x18" 1064b9209dc2SShally Verma "\x11\x3d\x4f\xba\x75\xd4\x33\x4e\x23\x6b\x7b\x57\x44\xe1\xd3" 1065b9209dc2SShally Verma "\x03\x13\xa6\xf0\x8b\x60\xb0\x9e\xee\x75\x08\x9d\x71\x63\x13" 1066b9209dc2SShally Verma "\xcb\xa6\x81\x92\x14\x03\x22\x2d\xde\x55"), 1067b9209dc2SShally Verma .length = 128 1068b9209dc2SShally Verma }, 1069b9209dc2SShally Verma .exponent = { 1070b9209dc2SShally Verma .data = (uint8_t *)("\x01\x00\x01"), 1071b9209dc2SShally Verma .length = 3 1072b9209dc2SShally Verma } 1073b9209dc2SShally Verma } 1074b9209dc2SShally Verma }; 1075b9209dc2SShally Verma /* Create asym crypto session and initialize it for the crypto device. */ 1076b9209dc2SShally Verma struct rte_cryptodev_asym_session *asym_session; 1077b9209dc2SShally Verma asym_session = rte_cryptodev_asym_session_create(asym_session_pool); 1078b9209dc2SShally Verma if (asym_session == NULL) 1079b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Session could not be created\n"); 1080b9209dc2SShally Verma 1081b9209dc2SShally Verma if (rte_cryptodev_asym_session_init(cdev_id, asym_session, 1082b9209dc2SShally Verma &modex_xform, asym_session_pool) < 0) 1083b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Session could not be initialized " 1084b9209dc2SShally Verma "for the crypto device\n"); 1085b9209dc2SShally Verma 1086b9209dc2SShally Verma /* Get a burst of crypto operations. */ 1087b9209dc2SShally Verma struct rte_crypto_op *crypto_ops[1]; 1088b9209dc2SShally Verma if (rte_crypto_op_bulk_alloc(crypto_op_pool, 1089b9209dc2SShally Verma RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 1090b9209dc2SShally Verma crypto_ops, 1) == 0) 1091b9209dc2SShally Verma rte_exit(EXIT_FAILURE, "Not enough crypto operations available\n"); 1092b9209dc2SShally Verma 1093b9209dc2SShally Verma /* Set up the crypto operations. */ 1094b9209dc2SShally Verma struct rte_crypto_asym_op *asym_op = crypto_ops[0]->asym; 1095b9209dc2SShally Verma 1096b9209dc2SShally Verma /* calculate mod exp of value 0xf8 */ 1097b9209dc2SShally Verma static unsigned char base[] = {0xF8}; 1098b9209dc2SShally Verma asym_op->modex.base.data = base; 1099b9209dc2SShally Verma asym_op->modex.base.length = sizeof(base); 1100b9209dc2SShally Verma asym_op->modex.base.iova = base; 1101b9209dc2SShally Verma 1102b9209dc2SShally Verma /* Attach the asym crypto session to the operation */ 1103b9209dc2SShally Verma rte_crypto_op_attach_asym_session(op, asym_session); 1104b9209dc2SShally Verma 1105b9209dc2SShally Verma /* Enqueue the crypto operations in the crypto device. */ 1106b9209dc2SShally Verma uint16_t num_enqueued_ops = rte_cryptodev_enqueue_burst(cdev_id, 0, 1107b9209dc2SShally Verma crypto_ops, 1); 1108b9209dc2SShally Verma 1109b9209dc2SShally Verma /* 1110b9209dc2SShally Verma * Dequeue the crypto operations until all the operations 1111b9209dc2SShally Verma * are processed in the crypto device. 1112b9209dc2SShally Verma */ 1113b9209dc2SShally Verma uint16_t num_dequeued_ops, total_num_dequeued_ops = 0; 1114b9209dc2SShally Verma do { 1115b9209dc2SShally Verma struct rte_crypto_op *dequeued_ops[1]; 1116b9209dc2SShally Verma num_dequeued_ops = rte_cryptodev_dequeue_burst(cdev_id, 0, 1117b9209dc2SShally Verma dequeued_ops, 1); 1118b9209dc2SShally Verma total_num_dequeued_ops += num_dequeued_ops; 1119b9209dc2SShally Verma 1120b9209dc2SShally Verma /* Check if operation was processed successfully */ 1121b9209dc2SShally Verma if (dequeued_ops[0]->status != RTE_CRYPTO_OP_STATUS_SUCCESS) 1122b9209dc2SShally Verma rte_exit(EXIT_FAILURE, 1123b9209dc2SShally Verma "Some operations were not processed correctly"); 1124b9209dc2SShally Verma 1125b9209dc2SShally Verma } while (total_num_dequeued_ops < num_enqueued_ops); 11260318c02bSDeclan Doherty 11270318c02bSDeclan Doherty 1128b9209dc2SShally VermaAsymmetric Crypto Device API 1129b9209dc2SShally Verma~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 11300318c02bSDeclan Doherty 1131b9209dc2SShally VermaThe cryptodev Library API is described in the 11323d4b2afbSDavid Marchand`DPDK API Reference <https://doc.dpdk.org/api/>`_ 1133