xref: /dpdk/doc/guides/prog_guide/env_abstraction_layer.rst (revision 5eaef15c1925b25237f5ef32b20b5701f95419e6)
1fc1f2750SBernard Iremonger..  BSD LICENSE
2fc1f2750SBernard Iremonger    Copyright(c) 2010-2014 Intel Corporation. All rights reserved.
3fc1f2750SBernard Iremonger    All rights reserved.
4fc1f2750SBernard Iremonger
5fc1f2750SBernard Iremonger    Redistribution and use in source and binary forms, with or without
6fc1f2750SBernard Iremonger    modification, are permitted provided that the following conditions
7fc1f2750SBernard Iremonger    are met:
8fc1f2750SBernard Iremonger
9fc1f2750SBernard Iremonger    * Redistributions of source code must retain the above copyright
10fc1f2750SBernard Iremonger    notice, this list of conditions and the following disclaimer.
11fc1f2750SBernard Iremonger    * Redistributions in binary form must reproduce the above copyright
12fc1f2750SBernard Iremonger    notice, this list of conditions and the following disclaimer in
13fc1f2750SBernard Iremonger    the documentation and/or other materials provided with the
14fc1f2750SBernard Iremonger    distribution.
15fc1f2750SBernard Iremonger    * Neither the name of Intel Corporation nor the names of its
16fc1f2750SBernard Iremonger    contributors may be used to endorse or promote products derived
17fc1f2750SBernard Iremonger    from this software without specific prior written permission.
18fc1f2750SBernard Iremonger
19fc1f2750SBernard Iremonger    THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
20fc1f2750SBernard Iremonger    "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
21fc1f2750SBernard Iremonger    LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
22fc1f2750SBernard Iremonger    A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
23fc1f2750SBernard Iremonger    OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
24fc1f2750SBernard Iremonger    SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
25fc1f2750SBernard Iremonger    LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
26fc1f2750SBernard Iremonger    DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
27fc1f2750SBernard Iremonger    THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
28fc1f2750SBernard Iremonger    (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
29fc1f2750SBernard Iremonger    OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30fc1f2750SBernard Iremonger
31fc1f2750SBernard Iremonger.. _Environment_Abstraction_Layer:
32fc1f2750SBernard Iremonger
33fc1f2750SBernard IremongerEnvironment Abstraction Layer
34fc1f2750SBernard Iremonger=============================
35fc1f2750SBernard Iremonger
36fc1f2750SBernard IremongerThe Environment Abstraction Layer (EAL) is responsible for gaining access to low-level resources such as hardware and memory space.
37fc1f2750SBernard IremongerIt provides a generic interface that hides the environment specifics from the applications and libraries.
38fc1f2750SBernard IremongerIt is the responsibility of the initialization routine to decide how to allocate these resources
39fc1f2750SBernard Iremonger(that is, memory space, PCI devices, timers, consoles, and so on).
40fc1f2750SBernard Iremonger
41fc1f2750SBernard IremongerTypical services expected from the EAL are:
42fc1f2750SBernard Iremonger
4348624fd9SSiobhan Butler*   DPDK Loading and Launching:
4448624fd9SSiobhan Butler    The DPDK and its application are linked as a single application and must be loaded by some means.
45fc1f2750SBernard Iremonger
46fc1f2750SBernard Iremonger*   Core Affinity/Assignment Procedures:
47fc1f2750SBernard Iremonger    The EAL provides mechanisms for assigning execution units to specific cores as well as creating execution instances.
48fc1f2750SBernard Iremonger
49fc1f2750SBernard Iremonger*   System Memory Reservation:
50fc1f2750SBernard Iremonger    The EAL facilitates the reservation of different memory zones, for example, physical memory areas for device interactions.
51fc1f2750SBernard Iremonger
52fc1f2750SBernard Iremonger*   PCI Address Abstraction: The EAL provides an interface to access PCI address space.
53fc1f2750SBernard Iremonger
54fc1f2750SBernard Iremonger*   Trace and Debug Functions: Logs, dump_stack, panic and so on.
55fc1f2750SBernard Iremonger
56fc1f2750SBernard Iremonger*   Utility Functions: Spinlocks and atomic counters that are not provided in libc.
57fc1f2750SBernard Iremonger
58fc1f2750SBernard Iremonger*   CPU Feature Identification: Determine at runtime if a particular feature, for example, Intel® AVX is supported.
59fc1f2750SBernard Iremonger    Determine if the current CPU supports the feature set that the binary was compiled for.
60fc1f2750SBernard Iremonger
61fc1f2750SBernard Iremonger*   Interrupt Handling: Interfaces to register/unregister callbacks to specific interrupt sources.
62fc1f2750SBernard Iremonger
63fc1f2750SBernard Iremonger*   Alarm Functions: Interfaces to set/remove callbacks to be run at a specific time.
64fc1f2750SBernard Iremonger
65fc1f2750SBernard IremongerEAL in a Linux-userland Execution Environment
66fc1f2750SBernard Iremonger---------------------------------------------
67fc1f2750SBernard Iremonger
6848624fd9SSiobhan ButlerIn a Linux user space environment, the DPDK application runs as a user-space application using the pthread library.
691c29883cSBruce RichardsonPCI information about devices and address space is discovered through the /sys kernel interface and through kernel modules such as uio_pci_generic, or igb_uio.
70fc1f2750SBernard IremongerRefer to the UIO: User-space drivers documentation in the Linux kernel. This memory is mmap'd in the application.
71fc1f2750SBernard Iremonger
72fc1f2750SBernard IremongerThe EAL performs physical memory allocation using mmap() in hugetlbfs (using huge page sizes to increase performance).
7348624fd9SSiobhan ButlerThis memory is exposed to DPDK service layers such as the :ref:`Mempool Library <Mempool_Library>`.
74fc1f2750SBernard Iremonger
7548624fd9SSiobhan ButlerAt this point, the DPDK services layer will be initialized, then through pthread setaffinity calls,
76fc1f2750SBernard Iremongereach execution unit will be assigned to a specific logical core to run as a user-level thread.
77fc1f2750SBernard Iremonger
78fc1f2750SBernard IremongerThe time reference is provided by the CPU Time-Stamp Counter (TSC) or by the HPET kernel API through a mmap() call.
79fc1f2750SBernard Iremonger
80fc1f2750SBernard IremongerInitialization and Core Launching
81fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
82fc1f2750SBernard Iremonger
83fc1f2750SBernard IremongerPart of the initialization is done by the start function of glibc.
84fc1f2750SBernard IremongerA check is also performed at initialization time to ensure that the micro architecture type chosen in the config file is supported by the CPU.
85fc1f2750SBernard IremongerThen, the main() function is called. The core initialization and launch is done in rte_eal_init() (see the API documentation).
86fc1f2750SBernard IremongerIt consist of calls to the pthread library (more specifically, pthread_self(), pthread_create(), and pthread_setaffinity_np()).
87fc1f2750SBernard Iremonger
884a22e6eeSJohn McNamara.. _figure_linuxapp_launch:
89fc1f2750SBernard Iremonger
904a22e6eeSJohn McNamara.. figure:: img/linuxapp_launch.*
91fc1f2750SBernard Iremonger
924a22e6eeSJohn McNamara   EAL Initialization in a Linux Application Environment
93fc1f2750SBernard Iremonger
94fc1f2750SBernard Iremonger
95fc1f2750SBernard Iremonger.. note::
96fc1f2750SBernard Iremonger
97fc1f2750SBernard Iremonger    Initialization of objects, such as memory zones, rings, memory pools, lpm tables and hash tables,
98fc1f2750SBernard Iremonger    should be done as part of the overall application initialization on the master lcore.
99fc1f2750SBernard Iremonger    The creation and initialization functions for these objects are not multi-thread safe.
100fc1f2750SBernard Iremonger    However, once initialized, the objects themselves can safely be used in multiple threads simultaneously.
101fc1f2750SBernard Iremonger
102fc1f2750SBernard IremongerMulti-process Support
103fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~
104fc1f2750SBernard Iremonger
105fc1f2750SBernard IremongerThe Linuxapp EAL allows a multi-process as well as a multi-threaded (pthread) deployment model.
106fc1f2750SBernard IremongerSee chapter 2.20
107fc1f2750SBernard Iremonger:ref:`Multi-process Support <Multi-process_Support>` for more details.
108fc1f2750SBernard Iremonger
109fc1f2750SBernard IremongerMemory Mapping Discovery and Memory Reservation
110fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
111fc1f2750SBernard Iremonger
112fc1f2750SBernard IremongerThe allocation of large contiguous physical memory is done using the hugetlbfs kernel filesystem.
113fc1f2750SBernard IremongerThe EAL provides an API to reserve named memory zones in this contiguous memory.
114fc1f2750SBernard IremongerThe physical address of the reserved memory for that memory zone is also returned to the user by the memory zone reservation API.
115fc1f2750SBernard Iremonger
116fc1f2750SBernard Iremonger.. note::
117fc1f2750SBernard Iremonger
118*5eaef15cSThomas Monjalon    Memory reservations done using the APIs provided by rte_malloc are also backed by pages from the hugetlbfs filesystem.
119fc1f2750SBernard Iremonger
120fc1f2750SBernard IremongerXen Dom0 support without hugetbls
121fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
122fc1f2750SBernard Iremonger
123fc1f2750SBernard IremongerThe existing memory management implementation is based on the Linux kernel hugepage mechanism.
124fc1f2750SBernard IremongerHowever, Xen Dom0 does not support hugepages, so a new Linux kernel module rte_dom0_mm is added to workaround this limitation.
125fc1f2750SBernard Iremonger
126fc1f2750SBernard IremongerThe EAL uses IOCTL interface to notify the Linux kernel module rte_dom0_mm to allocate memory of specified size,
127fc1f2750SBernard Iremongerand get all memory segments information from the module,
128fc1f2750SBernard Iremongerand the EAL uses MMAP interface to map the allocated memory.
129fc1f2750SBernard IremongerFor each memory segment, the physical addresses are contiguous within it but actual hardware addresses are contiguous within 2MB.
130fc1f2750SBernard Iremonger
131fc1f2750SBernard IremongerPCI Access
132fc1f2750SBernard Iremonger~~~~~~~~~~
133fc1f2750SBernard Iremonger
134fc1f2750SBernard IremongerThe EAL uses the /sys/bus/pci utilities provided by the kernel to scan the content on the PCI bus.
1351c29883cSBruce RichardsonTo access PCI memory, a kernel module called uio_pci_generic provides a /dev/uioX device file
1361c29883cSBruce Richardsonand resource files in /sys
137fc1f2750SBernard Iremongerthat can be mmap'd to obtain access to PCI address space from the application.
1381c29883cSBruce RichardsonThe DPDK-specific igb_uio module can also be used for this. Both drivers use the uio kernel feature (userland driver).
139fc1f2750SBernard Iremonger
140fc1f2750SBernard IremongerPer-lcore and Shared Variables
141fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
142fc1f2750SBernard Iremonger
143fc1f2750SBernard Iremonger.. note::
144fc1f2750SBernard Iremonger
145fc1f2750SBernard Iremonger    lcore refers to a logical execution unit of the processor, sometimes called a hardware *thread*.
146fc1f2750SBernard Iremonger
147fc1f2750SBernard IremongerShared variables are the default behavior.
148fc1f2750SBernard IremongerPer-lcore variables are implemented using *Thread Local Storage* (TLS) to provide per-thread local storage.
149fc1f2750SBernard Iremonger
150fc1f2750SBernard IremongerLogs
151fc1f2750SBernard Iremonger~~~~
152fc1f2750SBernard Iremonger
153fc1f2750SBernard IremongerA logging API is provided by EAL.
154fc1f2750SBernard IremongerBy default, in a Linux application, logs are sent to syslog and also to the console.
155fc1f2750SBernard IremongerHowever, the log function can be overridden by the user to use a different logging mechanism.
156fc1f2750SBernard Iremonger
157fc1f2750SBernard IremongerTrace and Debug Functions
158fc1f2750SBernard Iremonger^^^^^^^^^^^^^^^^^^^^^^^^^
159fc1f2750SBernard Iremonger
160fc1f2750SBernard IremongerThere are some debug functions to dump the stack in glibc.
161fc1f2750SBernard IremongerThe rte_panic() function can voluntarily provoke a SIG_ABORT,
162fc1f2750SBernard Iremongerwhich can trigger the generation of a core file, readable by gdb.
163fc1f2750SBernard Iremonger
164fc1f2750SBernard IremongerCPU Feature Identification
165fc1f2750SBernard Iremonger~~~~~~~~~~~~~~~~~~~~~~~~~~
166fc1f2750SBernard Iremonger
167fc1f2750SBernard IremongerThe EAL can query the CPU at runtime (using the rte_cpu_get_feature() function) to determine which CPU features are available.
168fc1f2750SBernard Iremonger
1695762a565SCunming LiangUser Space Interrupt Event
1705762a565SCunming Liang~~~~~~~~~~~~~~~~~~~~~~~~~~
1715762a565SCunming Liang
1725762a565SCunming Liang+ User Space Interrupt and Alarm Handling in Host Thread
173fc1f2750SBernard Iremonger
174fc1f2750SBernard IremongerThe EAL creates a host thread to poll the UIO device file descriptors to detect the interrupts.
175fc1f2750SBernard IremongerCallbacks can be registered or unregistered by the EAL functions for a specific interrupt event
176fc1f2750SBernard Iremongerand are called in the host thread asynchronously.
177fc1f2750SBernard IremongerThe EAL also allows timed callbacks to be used in the same way as for NIC interrupts.
178fc1f2750SBernard Iremonger
179fc1f2750SBernard Iremonger.. note::
180fc1f2750SBernard Iremonger
1815762a565SCunming Liang    In DPDK PMD, the only interrupts handled by the dedicated host thread are those for link status change,
182fc1f2750SBernard Iremonger    i.e. link up and link down notification.
183fc1f2750SBernard Iremonger
1845762a565SCunming Liang
1855762a565SCunming Liang+ RX Interrupt Event
1865762a565SCunming Liang
1875762a565SCunming LiangThe receive and transmit routines provided by each PMD don't limit themselves to execute in polling thread mode.
1885762a565SCunming LiangTo ease the idle polling with tiny throughput, it's useful to pause the polling and wait until the wake-up event happens.
1895762a565SCunming LiangThe RX interrupt is the first choice to be such kind of wake-up event, but probably won't be the only one.
1905762a565SCunming Liang
1915762a565SCunming LiangEAL provides the event APIs for this event-driven thread mode.
1925762a565SCunming LiangTaking linuxapp as an example, the implementation relies on epoll. Each thread can monitor an epoll instance
1935762a565SCunming Liangin which all the wake-up events' file descriptors are added. The event file descriptors are created and mapped to
1945762a565SCunming Liangthe interrupt vectors according to the UIO/VFIO spec.
1955762a565SCunming LiangFrom bsdapp's perspective, kqueue is the alternative way, but not implemented yet.
1965762a565SCunming Liang
1975762a565SCunming LiangEAL initializes the mapping between event file descriptors and interrupt vectors, while each device initializes the mapping
1985762a565SCunming Liangbetween interrupt vectors and queues. In this way, EAL actually is unaware of the interrupt cause on the specific vector.
1995762a565SCunming LiangThe eth_dev driver takes responsibility to program the latter mapping.
2005762a565SCunming Liang
2015762a565SCunming Liang.. note::
2025762a565SCunming Liang
2035762a565SCunming Liang    Per queue RX interrupt event is only allowed in VFIO which supports multiple MSI-X vector. In UIO, the RX interrupt
2045762a565SCunming Liang    together with other interrupt causes shares the same vector. In this case, when RX interrupt and LSC(link status change)
2055762a565SCunming Liang    interrupt are both enabled(intr_conf.lsc == 1 && intr_conf.rxq == 1), only the former is capable.
2065762a565SCunming Liang
2075762a565SCunming LiangThe RX interrupt are controlled/enabled/disabled by ethdev APIs - 'rte_eth_dev_rx_intr_*'. They return failure if the PMD
2085762a565SCunming Lianghasn't support them yet. The intr_conf.rxq flag is used to turn on the capability of RX interrupt per device.
2095762a565SCunming Liang
210fc1f2750SBernard IremongerBlacklisting
211fc1f2750SBernard Iremonger~~~~~~~~~~~~
212fc1f2750SBernard Iremonger
213fc1f2750SBernard IremongerThe EAL PCI device blacklist functionality can be used to mark certain NIC ports as blacklisted,
21448624fd9SSiobhan Butlerso they are ignored by the DPDK.
215fc1f2750SBernard IremongerThe ports to be blacklisted are identified using the PCIe* description (Domain:Bus:Device.Function).
216fc1f2750SBernard Iremonger
217fc1f2750SBernard IremongerMisc Functions
218fc1f2750SBernard Iremonger~~~~~~~~~~~~~~
219fc1f2750SBernard Iremonger
220fc1f2750SBernard IremongerLocks and atomic operations are per-architecture (i686 and x86_64).
221fc1f2750SBernard Iremonger
222fc1f2750SBernard IremongerMemory Segments and Memory Zones (memzone)
223fc1f2750SBernard Iremonger------------------------------------------
224fc1f2750SBernard Iremonger
225fc1f2750SBernard IremongerThe mapping of physical memory is provided by this feature in the EAL.
226fc1f2750SBernard IremongerAs physical memory can have gaps, the memory is described in a table of descriptors,
227fc1f2750SBernard Iremongerand each descriptor (called rte_memseg ) describes a contiguous portion of memory.
228fc1f2750SBernard Iremonger
229fc1f2750SBernard IremongerOn top of this, the memzone allocator's role is to reserve contiguous portions of physical memory.
230fc1f2750SBernard IremongerThese zones are identified by a unique name when the memory is reserved.
231fc1f2750SBernard Iremonger
232fc1f2750SBernard IremongerThe rte_memzone descriptors are also located in the configuration structure.
233fc1f2750SBernard IremongerThis structure is accessed using rte_eal_get_configuration().
234fc1f2750SBernard IremongerThe lookup (by name) of a memory zone returns a descriptor containing the physical address of the memory zone.
235fc1f2750SBernard Iremonger
236fc1f2750SBernard IremongerMemory zones can be reserved with specific start address alignment by supplying the align parameter
237fc1f2750SBernard Iremonger(by default, they are aligned to cache line size).
238fc1f2750SBernard IremongerThe alignment value should be a power of two and not less than the cache line size (64 bytes).
239fc1f2750SBernard IremongerMemory zones can also be reserved from either 2 MB or 1 GB hugepages, provided that both are available on the system.
240fc1f2750SBernard Iremonger
2411733be6dSCunming Liang
2421733be6dSCunming LiangMultiple pthread
2431733be6dSCunming Liang----------------
2441733be6dSCunming Liang
245e1ed63b0SCunming LiangDPDK usually pins one pthread per core to avoid the overhead of task switching.
246e1ed63b0SCunming LiangThis allows for significant performance gains, but lacks flexibility and is not always efficient.
2471733be6dSCunming Liang
248e1ed63b0SCunming LiangPower management helps to improve the CPU efficiency by limiting the CPU runtime frequency.
249e1ed63b0SCunming LiangHowever, alternately it is possible to utilize the idle cycles available to take advantage of
250e1ed63b0SCunming Liangthe full capability of the CPU.
2511733be6dSCunming Liang
252e1ed63b0SCunming LiangBy taking advantage of cgroup, the CPU utilization quota can be simply assigned.
253fea1d908SJohn McNamaraThis gives another way to improve the CPU efficiency, however, there is a prerequisite;
254e1ed63b0SCunming LiangDPDK must handle the context switching between multiple pthreads per core.
2551733be6dSCunming Liang
256e1ed63b0SCunming LiangFor further flexibility, it is useful to set pthread affinity not only to a CPU but to a CPU set.
2571733be6dSCunming Liang
2581733be6dSCunming LiangEAL pthread and lcore Affinity
2591733be6dSCunming Liang~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
2601733be6dSCunming Liang
261e1ed63b0SCunming LiangThe term "lcore" refers to an EAL thread, which is really a Linux/FreeBSD pthread.
262e1ed63b0SCunming Liang"EAL pthreads"  are created and managed by EAL and execute the tasks issued by *remote_launch*.
263e1ed63b0SCunming LiangIn each EAL pthread, there is a TLS (Thread Local Storage) called *_lcore_id* for unique identification.
264e1ed63b0SCunming LiangAs EAL pthreads usually bind 1:1 to the physical CPU, the *_lcore_id* is typically equal to the CPU ID.
2651733be6dSCunming Liang
266e1ed63b0SCunming LiangWhen using multiple pthreads, however, the binding is no longer always 1:1 between an EAL pthread and a specified physical CPU.
267e1ed63b0SCunming LiangThe EAL pthread may have affinity to a CPU set, and as such the *_lcore_id* will not be the same as the CPU ID.
268e1ed63b0SCunming LiangFor this reason, there is an EAL long option '--lcores' defined to assign the CPU affinity of lcores.
269e1ed63b0SCunming LiangFor a specified lcore ID or ID group, the option allows setting the CPU set for that EAL pthread.
2701733be6dSCunming Liang
2711733be6dSCunming LiangThe format pattern:
2721733be6dSCunming Liang	--lcores='<lcore_set>[@cpu_set][,<lcore_set>[@cpu_set],...]'
2731733be6dSCunming Liang
2741733be6dSCunming Liang'lcore_set' and 'cpu_set' can be a single number, range or a group.
2751733be6dSCunming Liang
2761733be6dSCunming LiangA number is a "digit([0-9]+)"; a range is "<number>-<number>"; a group is "(<number|range>[,<number|range>,...])".
2771733be6dSCunming Liang
278e1ed63b0SCunming LiangIf a '\@cpu_set' value is not supplied, the value of 'cpu_set' will default to the value of 'lcore_set'.
2791733be6dSCunming Liang
2801733be6dSCunming Liang    ::
2811733be6dSCunming Liang
2821733be6dSCunming Liang    	For example, "--lcores='1,2@(5-7),(3-5)@(0,2),(0,6),7-8'" which means start 9 EAL thread;
2831733be6dSCunming Liang    	    lcore 0 runs on cpuset 0x41 (cpu 0,6);
2841733be6dSCunming Liang    	    lcore 1 runs on cpuset 0x2 (cpu 1);
2851733be6dSCunming Liang    	    lcore 2 runs on cpuset 0xe0 (cpu 5,6,7);
2861733be6dSCunming Liang    	    lcore 3,4,5 runs on cpuset 0x5 (cpu 0,2);
2871733be6dSCunming Liang    	    lcore 6 runs on cpuset 0x41 (cpu 0,6);
2881733be6dSCunming Liang    	    lcore 7 runs on cpuset 0x80 (cpu 7);
2891733be6dSCunming Liang    	    lcore 8 runs on cpuset 0x100 (cpu 8).
2901733be6dSCunming Liang
291e1ed63b0SCunming LiangUsing this option, for each given lcore ID, the associated CPUs can be assigned.
2921733be6dSCunming LiangIt's also compatible with the pattern of corelist('-l') option.
2931733be6dSCunming Liang
2941733be6dSCunming Liangnon-EAL pthread support
2951733be6dSCunming Liang~~~~~~~~~~~~~~~~~~~~~~~
2961733be6dSCunming Liang
297e1ed63b0SCunming LiangIt is possible to use the DPDK execution context with any user pthread (aka. Non-EAL pthreads).
298e1ed63b0SCunming LiangIn a non-EAL pthread, the *_lcore_id* is always LCORE_ID_ANY which identifies that it is not an EAL thread with a valid, unique, *_lcore_id*.
299e1ed63b0SCunming LiangSome libraries will use an alternative unique ID (e.g. TID), some will not be impacted at all, and some will work but with limitations (e.g. timer and mempool libraries).
3001733be6dSCunming Liang
3011733be6dSCunming LiangAll these impacts are mentioned in :ref:`known_issue_label` section.
3021733be6dSCunming Liang
3031733be6dSCunming LiangPublic Thread API
3041733be6dSCunming Liang~~~~~~~~~~~~~~~~~
3051733be6dSCunming Liang
306e1ed63b0SCunming LiangThere are two public APIs ``rte_thread_set_affinity()`` and ``rte_pthread_get_affinity()`` introduced for threads.
3071733be6dSCunming LiangWhen they're used in any pthread context, the Thread Local Storage(TLS) will be set/get.
3081733be6dSCunming Liang
3091733be6dSCunming LiangThose TLS include *_cpuset* and *_socket_id*:
3101733be6dSCunming Liang
311e1ed63b0SCunming Liang*	*_cpuset* stores the CPUs bitmap to which the pthread is affinitized.
3121733be6dSCunming Liang
313fea1d908SJohn McNamara*	*_socket_id* stores the NUMA node of the CPU set. If the CPUs in CPU set belong to different NUMA node, the *_socket_id* will be set to SOCKET_ID_ANY.
3141733be6dSCunming Liang
3151733be6dSCunming Liang
3161733be6dSCunming Liang.. _known_issue_label:
3171733be6dSCunming Liang
3181733be6dSCunming LiangKnown Issues
3191733be6dSCunming Liang~~~~~~~~~~~~
3201733be6dSCunming Liang
3211733be6dSCunming Liang+ rte_mempool
3221733be6dSCunming Liang
323e1ed63b0SCunming Liang  The rte_mempool uses a per-lcore cache inside the mempool.
324e1ed63b0SCunming Liang  For non-EAL pthreads, ``rte_lcore_id()`` will not return a valid number.
325e1ed63b0SCunming Liang  So for now, when rte_mempool is used with non-EAL pthreads, the put/get operations will bypass the mempool cache and there is a performance penalty because of this bypass.
326e1ed63b0SCunming Liang  Support for non-EAL mempool cache is currently being enabled.
3271733be6dSCunming Liang
3281733be6dSCunming Liang+ rte_ring
3291733be6dSCunming Liang
330e1ed63b0SCunming Liang  rte_ring supports multi-producer enqueue and multi-consumer dequeue.
331fea1d908SJohn McNamara  However, it is non-preemptive, this has a knock on effect of making rte_mempool non-preemptable.
3321733be6dSCunming Liang
3331733be6dSCunming Liang  .. note::
3341733be6dSCunming Liang
3351733be6dSCunming Liang    The "non-preemptive" constraint means:
3361733be6dSCunming Liang
3371733be6dSCunming Liang    - a pthread doing multi-producers enqueues on a given ring must not
3381733be6dSCunming Liang      be preempted by another pthread doing a multi-producer enqueue on
3391733be6dSCunming Liang      the same ring.
3401733be6dSCunming Liang    - a pthread doing multi-consumers dequeues on a given ring must not
3411733be6dSCunming Liang      be preempted by another pthread doing a multi-consumer dequeue on
3421733be6dSCunming Liang      the same ring.
3431733be6dSCunming Liang
344e1ed63b0SCunming Liang    Bypassing this constraint it may cause the 2nd pthread to spin until the 1st one is scheduled again.
3451733be6dSCunming Liang    Moreover, if the 1st pthread is preempted by a context that has an higher priority, it may even cause a dead lock.
3461733be6dSCunming Liang
347e1ed63b0SCunming Liang  This does not mean it cannot be used, simply, there is a need to narrow down the situation when it is used by multi-pthread on the same core.
3481733be6dSCunming Liang
3491733be6dSCunming Liang  1. It CAN be used for any single-producer or single-consumer situation.
3501733be6dSCunming Liang
351e1ed63b0SCunming Liang  2. It MAY be used by multi-producer/consumer pthread whose scheduling policy are all SCHED_OTHER(cfs). User SHOULD be aware of the performance penalty before using it.
3521733be6dSCunming Liang
353e1ed63b0SCunming Liang  3. It MUST not be used by multi-producer/consumer pthreads, whose scheduling policies are SCHED_FIFO or SCHED_RR.
3541733be6dSCunming Liang
3551733be6dSCunming Liang  ``RTE_RING_PAUSE_REP_COUNT`` is defined for rte_ring to reduce contention. It's mainly for case 2, a yield is issued after number of times pause repeat.
3561733be6dSCunming Liang
357e1ed63b0SCunming Liang  It adds a sched_yield() syscall if the thread spins for too long while waiting on the other thread to finish its operations on the ring.
358fea1d908SJohn McNamara  This gives the preempted thread a chance to proceed and finish with the ring enqueue/dequeue operation.
3591733be6dSCunming Liang
3601733be6dSCunming Liang+ rte_timer
3611733be6dSCunming Liang
362e1ed63b0SCunming Liang  Running  ``rte_timer_manager()`` on a non-EAL pthread is not allowed. However, resetting/stopping the timer from a non-EAL pthread is allowed.
3631733be6dSCunming Liang
3641733be6dSCunming Liang+ rte_log
3651733be6dSCunming Liang
366e1ed63b0SCunming Liang  In non-EAL pthreads, there is no per thread loglevel and logtype, global loglevels are used.
3671733be6dSCunming Liang
3681733be6dSCunming Liang+ misc
3691733be6dSCunming Liang
3701733be6dSCunming Liang  The debug statistics of rte_ring, rte_mempool and rte_timer are not supported in a non-EAL pthread.
3711733be6dSCunming Liang
3721733be6dSCunming Liangcgroup control
3731733be6dSCunming Liang~~~~~~~~~~~~~~
3741733be6dSCunming Liang
375e1ed63b0SCunming LiangThe following is a simple example of cgroup control usage, there are two pthreads(t0 and t1) doing packet I/O on the same core ($CPU).
3761733be6dSCunming LiangWe expect only 50% of CPU spend on packet IO.
3771733be6dSCunming Liang
3781796f485SThomas Monjalon  .. code-block:: console
3791733be6dSCunming Liang
3801733be6dSCunming Liang    mkdir /sys/fs/cgroup/cpu/pkt_io
3811733be6dSCunming Liang    mkdir /sys/fs/cgroup/cpuset/pkt_io
3821733be6dSCunming Liang
3831733be6dSCunming Liang    echo $cpu > /sys/fs/cgroup/cpuset/cpuset.cpus
3841733be6dSCunming Liang
3851733be6dSCunming Liang    echo $t0 > /sys/fs/cgroup/cpu/pkt_io/tasks
3861733be6dSCunming Liang    echo $t0 > /sys/fs/cgroup/cpuset/pkt_io/tasks
3871733be6dSCunming Liang
3881733be6dSCunming Liang    echo $t1 > /sys/fs/cgroup/cpu/pkt_io/tasks
3891733be6dSCunming Liang    echo $t1 > /sys/fs/cgroup/cpuset/pkt_io/tasks
3901733be6dSCunming Liang
3911733be6dSCunming Liang    cd /sys/fs/cgroup/cpu/pkt_io
3921733be6dSCunming Liang    echo 100000 > pkt_io/cpu.cfs_period_us
3931733be6dSCunming Liang    echo  50000 > pkt_io/cpu.cfs_quota_us
3941733be6dSCunming Liang
3951733be6dSCunming Liang
39656297061SSergio Gonzalez MonroyMalloc
39756297061SSergio Gonzalez Monroy------
39856297061SSergio Gonzalez Monroy
39956297061SSergio Gonzalez MonroyThe EAL provides a malloc API to allocate any-sized memory.
40056297061SSergio Gonzalez Monroy
40156297061SSergio Gonzalez MonroyThe objective of this API is to provide malloc-like functions to allow
40256297061SSergio Gonzalez Monroyallocation from hugepage memory and to facilitate application porting.
40356297061SSergio Gonzalez MonroyThe *DPDK API Reference* manual describes the available functions.
40456297061SSergio Gonzalez Monroy
40556297061SSergio Gonzalez MonroyTypically, these kinds of allocations should not be done in data plane
40656297061SSergio Gonzalez Monroyprocessing because they are slower than pool-based allocation and make
40756297061SSergio Gonzalez Monroyuse of locks within the allocation and free paths.
40856297061SSergio Gonzalez MonroyHowever, they can be used in configuration code.
40956297061SSergio Gonzalez Monroy
41056297061SSergio Gonzalez MonroyRefer to the rte_malloc() function description in the *DPDK API Reference*
41156297061SSergio Gonzalez Monroymanual for more information.
41256297061SSergio Gonzalez Monroy
41356297061SSergio Gonzalez MonroyCookies
41456297061SSergio Gonzalez Monroy~~~~~~~
41556297061SSergio Gonzalez Monroy
41656297061SSergio Gonzalez MonroyWhen CONFIG_RTE_MALLOC_DEBUG is enabled, the allocated memory contains
41756297061SSergio Gonzalez Monroyoverwrite protection fields to help identify buffer overflows.
41856297061SSergio Gonzalez Monroy
41956297061SSergio Gonzalez MonroyAlignment and NUMA Constraints
42056297061SSergio Gonzalez Monroy~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
42156297061SSergio Gonzalez Monroy
42256297061SSergio Gonzalez MonroyThe rte_malloc() takes an align argument that can be used to request a memory
42356297061SSergio Gonzalez Monroyarea that is aligned on a multiple of this value (which must be a power of two).
42456297061SSergio Gonzalez Monroy
42556297061SSergio Gonzalez MonroyOn systems with NUMA support, a call to the rte_malloc() function will return
42656297061SSergio Gonzalez Monroymemory that has been allocated on the NUMA socket of the core which made the call.
42756297061SSergio Gonzalez MonroyA set of APIs is also provided, to allow memory to be explicitly allocated on a
42856297061SSergio Gonzalez MonroyNUMA socket directly, or by allocated on the NUMA socket where another core is
42956297061SSergio Gonzalez Monroylocated, in the case where the memory is to be used by a logical core other than
43056297061SSergio Gonzalez Monroyon the one doing the memory allocation.
43156297061SSergio Gonzalez Monroy
43256297061SSergio Gonzalez MonroyUse Cases
43356297061SSergio Gonzalez Monroy~~~~~~~~~
43456297061SSergio Gonzalez Monroy
43556297061SSergio Gonzalez MonroyThis API is meant to be used by an application that requires malloc-like
43656297061SSergio Gonzalez Monroyfunctions at initialization time.
43756297061SSergio Gonzalez Monroy
43856297061SSergio Gonzalez MonroyFor allocating/freeing data at runtime, in the fast-path of an application,
43956297061SSergio Gonzalez Monroythe memory pool library should be used instead.
44056297061SSergio Gonzalez Monroy
44156297061SSergio Gonzalez MonroyInternal Implementation
44256297061SSergio Gonzalez Monroy~~~~~~~~~~~~~~~~~~~~~~~
44356297061SSergio Gonzalez Monroy
44456297061SSergio Gonzalez MonroyData Structures
44556297061SSergio Gonzalez Monroy^^^^^^^^^^^^^^^
44656297061SSergio Gonzalez Monroy
44756297061SSergio Gonzalez MonroyThere are two data structure types used internally in the malloc library:
44856297061SSergio Gonzalez Monroy
44956297061SSergio Gonzalez Monroy*   struct malloc_heap - used to track free space on a per-socket basis
45056297061SSergio Gonzalez Monroy
45156297061SSergio Gonzalez Monroy*   struct malloc_elem - the basic element of allocation and free-space
45256297061SSergio Gonzalez Monroy    tracking inside the library.
45356297061SSergio Gonzalez Monroy
45456297061SSergio Gonzalez MonroyStructure: malloc_heap
45556297061SSergio Gonzalez Monroy""""""""""""""""""""""
45656297061SSergio Gonzalez Monroy
45756297061SSergio Gonzalez MonroyThe malloc_heap structure is used to manage free space on a per-socket basis.
45856297061SSergio Gonzalez MonroyInternally, there is one heap structure per NUMA node, which allows us to
45956297061SSergio Gonzalez Monroyallocate memory to a thread based on the NUMA node on which this thread runs.
46056297061SSergio Gonzalez MonroyWhile this does not guarantee that the memory will be used on that NUMA node,
46156297061SSergio Gonzalez Monroyit is no worse than a scheme where the memory is always allocated on a fixed
46256297061SSergio Gonzalez Monroyor random node.
46356297061SSergio Gonzalez Monroy
46456297061SSergio Gonzalez MonroyThe key fields of the heap structure and their function are described below
46556297061SSergio Gonzalez Monroy(see also diagram above):
46656297061SSergio Gonzalez Monroy
46756297061SSergio Gonzalez Monroy*   lock - the lock field is needed to synchronize access to the heap.
46856297061SSergio Gonzalez Monroy    Given that the free space in the heap is tracked using a linked list,
46956297061SSergio Gonzalez Monroy    we need a lock to prevent two threads manipulating the list at the same time.
47056297061SSergio Gonzalez Monroy
47156297061SSergio Gonzalez Monroy*   free_head - this points to the first element in the list of free nodes for
47256297061SSergio Gonzalez Monroy    this malloc heap.
47356297061SSergio Gonzalez Monroy
47456297061SSergio Gonzalez Monroy.. note::
47556297061SSergio Gonzalez Monroy
47656297061SSergio Gonzalez Monroy    The malloc_heap structure does not keep track of in-use blocks of memory,
47756297061SSergio Gonzalez Monroy    since these are never touched except when they are to be freed again -
47856297061SSergio Gonzalez Monroy    at which point the pointer to the block is an input to the free() function.
47956297061SSergio Gonzalez Monroy
48056297061SSergio Gonzalez Monroy.. _figure_malloc_heap:
48156297061SSergio Gonzalez Monroy
48256297061SSergio Gonzalez Monroy.. figure:: img/malloc_heap.*
48356297061SSergio Gonzalez Monroy
48456297061SSergio Gonzalez Monroy   Example of a malloc heap and malloc elements within the malloc library
48556297061SSergio Gonzalez Monroy
48656297061SSergio Gonzalez Monroy
48756297061SSergio Gonzalez Monroy.. _malloc_elem:
48856297061SSergio Gonzalez Monroy
48956297061SSergio Gonzalez MonroyStructure: malloc_elem
49056297061SSergio Gonzalez Monroy""""""""""""""""""""""
49156297061SSergio Gonzalez Monroy
49256297061SSergio Gonzalez MonroyThe malloc_elem structure is used as a generic header structure for various
49356297061SSergio Gonzalez Monroyblocks of memory.
49456297061SSergio Gonzalez MonroyIt is used in three different ways - all shown in the diagram above:
49556297061SSergio Gonzalez Monroy
49656297061SSergio Gonzalez Monroy#.  As a header on a block of free or allocated memory - normal case
49756297061SSergio Gonzalez Monroy
49856297061SSergio Gonzalez Monroy#.  As a padding header inside a block of memory
49956297061SSergio Gonzalez Monroy
50056297061SSergio Gonzalez Monroy#.  As an end-of-memseg marker
50156297061SSergio Gonzalez Monroy
50256297061SSergio Gonzalez MonroyThe most important fields in the structure and how they are used are described below.
50356297061SSergio Gonzalez Monroy
50456297061SSergio Gonzalez Monroy.. note::
50556297061SSergio Gonzalez Monroy
50656297061SSergio Gonzalez Monroy    If the usage of a particular field in one of the above three usages is not
50756297061SSergio Gonzalez Monroy    described, the field can be assumed to have an undefined value in that
50856297061SSergio Gonzalez Monroy    situation, for example, for padding headers only the "state" and "pad"
50956297061SSergio Gonzalez Monroy    fields have valid values.
51056297061SSergio Gonzalez Monroy
51156297061SSergio Gonzalez Monroy*   heap - this pointer is a reference back to the heap structure from which
51256297061SSergio Gonzalez Monroy    this block was allocated.
51356297061SSergio Gonzalez Monroy    It is used for normal memory blocks when they are being freed, to add the
51456297061SSergio Gonzalez Monroy    newly-freed block to the heap's free-list.
51556297061SSergio Gonzalez Monroy
51656297061SSergio Gonzalez Monroy*   prev - this pointer points to the header element/block in the memseg
51756297061SSergio Gonzalez Monroy    immediately behind the current one. When freeing a block, this pointer is
51856297061SSergio Gonzalez Monroy    used to reference the previous block to check if that block is also free.
51956297061SSergio Gonzalez Monroy    If so, then the two free blocks are merged to form a single larger block.
52056297061SSergio Gonzalez Monroy
52156297061SSergio Gonzalez Monroy*   next_free - this pointer is used to chain the free-list of unallocated
52256297061SSergio Gonzalez Monroy    memory blocks together.
52356297061SSergio Gonzalez Monroy    It is only used in normal memory blocks; on ``malloc()`` to find a suitable
52456297061SSergio Gonzalez Monroy    free block to allocate and on ``free()`` to add the newly freed element to
52556297061SSergio Gonzalez Monroy    the free-list.
52656297061SSergio Gonzalez Monroy
52756297061SSergio Gonzalez Monroy*   state - This field can have one of three values: ``FREE``, ``BUSY`` or
52856297061SSergio Gonzalez Monroy    ``PAD``.
52956297061SSergio Gonzalez Monroy    The former two are to indicate the allocation state of a normal memory block
53056297061SSergio Gonzalez Monroy    and the latter is to indicate that the element structure is a dummy structure
53156297061SSergio Gonzalez Monroy    at the end of the start-of-block padding, i.e. where the start of the data
53256297061SSergio Gonzalez Monroy    within a block is not at the start of the block itself, due to alignment
53356297061SSergio Gonzalez Monroy    constraints.
53456297061SSergio Gonzalez Monroy    In that case, the pad header is used to locate the actual malloc element
53556297061SSergio Gonzalez Monroy    header for the block.
53656297061SSergio Gonzalez Monroy    For the end-of-memseg structure, this is always a ``BUSY`` value, which
53756297061SSergio Gonzalez Monroy    ensures that no element, on being freed, searches beyond the end of the
53856297061SSergio Gonzalez Monroy    memseg for other blocks to merge with into a larger free area.
53956297061SSergio Gonzalez Monroy
54056297061SSergio Gonzalez Monroy*   pad - this holds the length of the padding present at the start of the block.
54156297061SSergio Gonzalez Monroy    In the case of a normal block header, it is added to the address of the end
54256297061SSergio Gonzalez Monroy    of the header to give the address of the start of the data area, i.e. the
54356297061SSergio Gonzalez Monroy    value passed back to the application on a malloc.
54456297061SSergio Gonzalez Monroy    Within a dummy header inside the padding, this same value is stored, and is
54556297061SSergio Gonzalez Monroy    subtracted from the address of the dummy header to yield the address of the
54656297061SSergio Gonzalez Monroy    actual block header.
54756297061SSergio Gonzalez Monroy
54856297061SSergio Gonzalez Monroy*   size - the size of the data block, including the header itself.
54956297061SSergio Gonzalez Monroy    For end-of-memseg structures, this size is given as zero, though it is never
55056297061SSergio Gonzalez Monroy    actually checked.
55156297061SSergio Gonzalez Monroy    For normal blocks which are being freed, this size value is used in place of
55256297061SSergio Gonzalez Monroy    a "next" pointer to identify the location of the next block of memory that
55356297061SSergio Gonzalez Monroy    in the case of being ``FREE``, the two free blocks can be merged into one.
55456297061SSergio Gonzalez Monroy
55556297061SSergio Gonzalez MonroyMemory Allocation
55656297061SSergio Gonzalez Monroy^^^^^^^^^^^^^^^^^
55756297061SSergio Gonzalez Monroy
55856297061SSergio Gonzalez MonroyOn EAL initialisation, all memsegs are setup as part of the malloc heap.
55956297061SSergio Gonzalez MonroyThis setup involves placing a dummy structure at the end with ``BUSY`` state,
56056297061SSergio Gonzalez Monroywhich may contain a sentinel value if ``CONFIG_RTE_MALLOC_DEBUG`` is enabled,
56156297061SSergio Gonzalez Monroyand a proper :ref:`element header<malloc_elem>` with ``FREE`` at the start
56256297061SSergio Gonzalez Monroyfor each memseg.
56356297061SSergio Gonzalez MonroyThe ``FREE`` element is then added to the ``free_list`` for the malloc heap.
56456297061SSergio Gonzalez Monroy
56556297061SSergio Gonzalez MonroyWhen an application makes a call to a malloc-like function, the malloc function
56656297061SSergio Gonzalez Monroywill first index the ``lcore_config`` structure for the calling thread, and
56756297061SSergio Gonzalez Monroydetermine the NUMA node of that thread.
56856297061SSergio Gonzalez MonroyThe NUMA node is used to index the array of ``malloc_heap`` structures which is
56956297061SSergio Gonzalez Monroypassed as a parameter to the ``heap_alloc()`` function, along with the
57056297061SSergio Gonzalez Monroyrequested size, type, alignment and boundary parameters.
57156297061SSergio Gonzalez Monroy
57256297061SSergio Gonzalez MonroyThe ``heap_alloc()`` function will scan the free_list of the heap, and attempt
57356297061SSergio Gonzalez Monroyto find a free block suitable for storing data of the requested size, with the
57456297061SSergio Gonzalez Monroyrequested alignment and boundary constraints.
57556297061SSergio Gonzalez Monroy
57656297061SSergio Gonzalez MonroyWhen a suitable free element has been identified, the pointer to be returned
57756297061SSergio Gonzalez Monroyto the user is calculated.
57856297061SSergio Gonzalez MonroyThe cache-line of memory immediately preceding this pointer is filled with a
57956297061SSergio Gonzalez Monroystruct malloc_elem header.
58056297061SSergio Gonzalez MonroyBecause of alignment and boundary constraints, there could be free space at
58156297061SSergio Gonzalez Monroythe start and/or end of the element, resulting in the following behavior:
58256297061SSergio Gonzalez Monroy
58356297061SSergio Gonzalez Monroy#. Check for trailing space.
58456297061SSergio Gonzalez Monroy   If the trailing space is big enough, i.e. > 128 bytes, then the free element
58556297061SSergio Gonzalez Monroy   is split.
58656297061SSergio Gonzalez Monroy   If it is not, then we just ignore it (wasted space).
58756297061SSergio Gonzalez Monroy
58856297061SSergio Gonzalez Monroy#. Check for space at the start of the element.
58956297061SSergio Gonzalez Monroy   If the space at the start is small, i.e. <=128 bytes, then a pad header is
59056297061SSergio Gonzalez Monroy   used, and the remaining space is wasted.
59156297061SSergio Gonzalez Monroy   If, however, the remaining space is greater, then the free element is split.
59256297061SSergio Gonzalez Monroy
59356297061SSergio Gonzalez MonroyThe advantage of allocating the memory from the end of the existing element is
59456297061SSergio Gonzalez Monroythat no adjustment of the free list needs to take place - the existing element
59556297061SSergio Gonzalez Monroyon the free list just has its size pointer adjusted, and the following element
59656297061SSergio Gonzalez Monroyhas its "prev" pointer redirected to the newly created element.
59756297061SSergio Gonzalez Monroy
59856297061SSergio Gonzalez MonroyFreeing Memory
59956297061SSergio Gonzalez Monroy^^^^^^^^^^^^^^
60056297061SSergio Gonzalez Monroy
60156297061SSergio Gonzalez MonroyTo free an area of memory, the pointer to the start of the data area is passed
60256297061SSergio Gonzalez Monroyto the free function.
60356297061SSergio Gonzalez MonroyThe size of the ``malloc_elem`` structure is subtracted from this pointer to get
60456297061SSergio Gonzalez Monroythe element header for the block.
60556297061SSergio Gonzalez MonroyIf this header is of type ``PAD`` then the pad length is further subtracted from
60656297061SSergio Gonzalez Monroythe pointer to get the proper element header for the entire block.
60756297061SSergio Gonzalez Monroy
60856297061SSergio Gonzalez MonroyFrom this element header, we get pointers to the heap from which the block was
60956297061SSergio Gonzalez Monroyallocated and to where it must be freed, as well as the pointer to the previous
61056297061SSergio Gonzalez Monroyelement, and via the size field, we can calculate the pointer to the next element.
61156297061SSergio Gonzalez MonroyThese next and previous elements are then checked to see if they are also
61256297061SSergio Gonzalez Monroy``FREE``, and if so, they are merged with the current element.
61356297061SSergio Gonzalez MonroyThis means that we can never have two ``FREE`` memory blocks adjacent to one
61456297061SSergio Gonzalez Monroyanother, as they are always merged into a single block.
615