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/Linux-v5.4/Documentation/infiniband/
Dtag_matching.rst14 The ordering rules require that when more than one pair of send and receive
16 and the earliest posted-receive is the pair that must be used to satisfy the
23 corresponding matching receive is posted. If a matching receive is posted,
44 There are two types of matching objects used, the posted receive list and the
45 unexpected message list. The application posts receive buffers through calls
46 to the MPI receive routines in the posted receive list and posts send messages
47 using the MPI send routines. The head of the posted receive list may be
50 When send is initiated and arrives at the receive side, if there is no
51 pre-posted receive for this arriving message, it is passed to the software and
54 specified receive buffer. This allows overlapping receive-side MPI tag
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/Linux-v5.4/drivers/staging/greybus/
Dlog.c22 struct gb_log_send_log_request *receive; in gb_log_request_handler() local
31 if (op->request->payload_size < sizeof(*receive)) { in gb_log_request_handler()
33 op->request->payload_size, sizeof(*receive)); in gb_log_request_handler()
36 receive = op->request->payload; in gb_log_request_handler()
37 len = le16_to_cpu(receive->len); in gb_log_request_handler()
38 if (len != (op->request->payload_size - sizeof(*receive))) { in gb_log_request_handler()
40 (op->request->payload_size - sizeof(*receive))); in gb_log_request_handler()
54 receive->msg[len - 1] = '\0'; in gb_log_request_handler()
60 dev_dbg(dev, "%s", receive->msg); in gb_log_request_handler()
Draw.c94 struct gb_raw_send_request *receive; in gb_raw_request_handler() local
103 if (op->request->payload_size < sizeof(*receive)) { in gb_raw_request_handler()
105 op->request->payload_size, sizeof(*receive)); in gb_raw_request_handler()
108 receive = op->request->payload; in gb_raw_request_handler()
109 len = le32_to_cpu(receive->len); in gb_raw_request_handler()
120 return receive_data(raw, len, receive->data); in gb_raw_request_handler()
/Linux-v5.4/Documentation/devicetree/bindings/powerpc/fsl/
Dmpic-msgr.txt25 - mpic-msgr-receive-mask: Specifies what registers in the containing block
26 are allowed to receive interrupts. The value is a bit mask where a set
27 bit at bit 'n' indicates that message register 'n' can receive interrupts.
50 // Message registers 0 and 2 in this block can receive interrupts on
53 mpic-msgr-receive-mask = <0x5>;
59 // Message registers 0 and 2 in this block can receive interrupts on
62 mpic-msgr-receive-mask = <0x5>;
/Linux-v5.4/drivers/input/serio/
Dlibps2.c230 unsigned int receive = (command >> 8) & 0xf; in __ps2_command() local
235 if (receive > sizeof(ps2dev->cmdbuf)) { in __ps2_command()
250 ps2dev->cmdcnt = receive; in __ps2_command()
251 if (receive && param) in __ps2_command()
252 for (i = 0; i < receive; i++) in __ps2_command()
253 ps2dev->cmdbuf[(receive - 1) - i] = param[i]; in __ps2_command()
298 for (i = 0; i < receive; i++) in __ps2_command()
299 param[i] = ps2dev->cmdbuf[(receive - 1) - i]; in __ps2_command()
317 receive, param ?: send_param); in __ps2_command()
/Linux-v5.4/Documentation/networking/
Dstrparser.txt13 The strparser works in one of two modes: receive callback or general
16 In receive callback mode, the strparser is called from the data_ready
29 functions, and a data_ready function for receive callback mode. The
42 socket associated with the stream parser for use with receive
83 maximum messages size is the limit of the receive socket
84 buffer and message timeout is the receive timeout for the socket.
120 zero) and the parser is in receive callback mode, then it will set
130 processing a timeout). In receive callback mode the default
137 by the lock callback. In receive callback mode the default
158 the TCP socket in receive callback mode. The stream parser may
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Dscaling.rst27 Contemporary NICs support multiple receive and transmit descriptor queues
31 of logical flows. Packets for each flow are steered to a separate receive
42 stores a queue number. The receive queue for a packet is determined
49 can be directed to their own receive queue. Such “n-tuple” filters can
59 num_queues. A typical RSS configuration would be to have one receive queue
76 Each receive queue has a separate IRQ associated with it. The NIC triggers
82 processing takes place in receive interrupt handling, it is advantageous
83 to spread receive interrupts between CPUs. To manually adjust the IRQ
92 RSS should be enabled when latency is a concern or whenever receive
97 is likely the one with the smallest number of receive queues where no
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Dkcm.txt6 can efficiently send and receive application protocol messages over TCP using
44 Similarly, in the receive path, messages are constructed on each TCP socket
52 messages on receive as well as other connection specific information for KCM.
60 can be used to send and receive messages from the KCM socket.
95 KCM limits the maximum receive message size to be the size of the receive
102 A timeout may be set for assembling messages on a receive socket. The timeout
103 value is taken from the receive timeout of the attached TCP socket (this is set
185 Disabling receive on KCM socket
189 When receive is disabled, any pending messages in the socket's
190 receive buffer are moved to other sockets. This feature is useful
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Daltera_tse.txt36 The SGDMA supports only a single transmit or receive operation at a time, and
74 The driver will post receive buffers to the receive DMA logic during driver
76 underlying DMA logic (MSGDMA is able queue receive buffers, SGDMA is not able
77 to queue receive buffers to the SGDMA receive logic). When a packet is
78 received, the DMA logic generates an interrupt. The driver handles a receive
79 interrupt by obtaining the DMA receive logic status, reaping receive
80 completions until no more receive completions are available.
84 using NAPI for receive operations. Interrupt mitigation is not yet supported
/Linux-v5.4/Documentation/devicetree/bindings/interrupt-controller/
Dcirrus,clps711x-intc.txt25 13: URXINT1 UART1 receive FIFO half full
29 17: SS2RX SSI2 receive FIFO half or greater full
32 29: URXINT2 UART2 receive FIFO half full
/Linux-v5.4/net/caif/
Dcfdgml.c34 dgm->layer.receive = cfdgml_receive; in cfdgml_create()
46 caif_assert(layr->receive != NULL); in cfdgml_receive()
61 ret = layr->up->receive(layr->up, pkt); in cfdgml_receive()
Dcfveil.c33 vei->layer.receive = cfvei_receive; in cfvei_create()
44 caif_assert(layr->receive != NULL); in cfvei_receive()
55 ret = layr->up->receive(layr->up, pkt); in cfvei_receive()
Dcfutill.c34 util->layer.receive = cfutill_receive; in cfutill_create()
46 caif_assert(layr->up->receive != NULL); in cfutill_receive()
56 return layr->up->receive(layr->up, pkt); in cfutill_receive()
Dcfdbgl.c27 dbg->layer.receive = cfdbgl_receive; in cfdbgl_create()
35 return layr->up->receive(layr->up, pkt); in cfdbgl_receive()
Dcfvidl.c30 vid->layer.receive = cfvidl_receive; in cfvidl_create()
44 return layr->up->receive(layr->up, pkt); in cfvidl_receive()
/Linux-v5.4/Documentation/devicetree/bindings/sound/
Dadi,axi-i2s.txt3 The core can be generated with transmit (playback), only receive
15 the core. The core expects two dma channels if both transmit and receive are
17 - dma-names : "tx" for the transmit channel, "rx" for the receive channel.
/Linux-v5.4/Documentation/media/uapi/rc/
Dlirc-get-rec-mode.rst20 LIRC_GET_REC_MODE/LIRC_SET_REC_MODE - Get/set current receive mode.
38 Mode used for receive.
43 Get and set the current receive mode. Only
Dlirc-set-rec-timeout-reports.rst19 LIRC_SET_REC_TIMEOUT_REPORTS - enable or disable timeout reports for IR receive
43 Enable or disable timeout reports for IR receive. By default, timeout reports
Dlirc-set-rec-carrier.rst19 LIRC_SET_REC_CARRIER - Set carrier used to modulate IR receive.
40 Set receive carrier used to modulate IR PWM pulses and spaces.
/Linux-v5.4/Documentation/networking/device_drivers/neterion/
Ds2io.txt44 and receive, TSO.
46 c. Multi-buffer receive mode. Scattering of packet across multiple
58 f. Multi-FIFO/Ring. Supports up to 8 transmit queues and receive rings,
68 Number of receive rings
78 Size of each receive ring(in 4K blocks)
Dvxge.txt45 Checksum offload (TCP/UDP/IP) on transmit and receive paths
47 Generic Receive Offload (GRO) on receive path
64 Up to 17 hardware based transmit and receive data channels, with
/Linux-v5.4/Documentation/networking/device_drivers/microsoft/
Dnetvsc.txt22 Hyper-V supports receive side scaling. For TCP & UDP, packets can
75 Packets are received into a receive area which is created when device
76 is probed. The receive area is broken into MTU sized chunks and each may
77 contain one or more packets. The number of receive sections may be changed
/Linux-v5.4/Documentation/networking/device_drivers/intel/
Dixgb.rst95 receive.
119 This value is the number of receive descriptors allocated by the driver.
121 Each descriptor is 16 bytes. A receive buffer is also allocated for
124 receive buffer size is 2048 bytes. When the MTU is greater than 1500 the
125 receive buffer size will be either 4056, 8192, or 16384 bytes. The
142 This value delays the generation of receive interrupts in units of
148 run out of available receive descriptors.
205 of Linux to transmit and receive data. The following enhancements were
271 # set maximum receive socket buffer size, default 131071
275 # set default receive socket buffer size, default 65535
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/Linux-v5.4/Documentation/devicetree/bindings/spi/
Dmicrochip,spi-pic32.txt7 of <fault-irq>, <receive-irq>, <transmit-irq>.
18 named "spi-tx" for transmit and named "spi-rx" for receive.
/Linux-v5.4/Documentation/networking/caif/
DLinux-CAIF.txt69 CAIF payload with receive and transmit functions.
73 to the called function (except for framing layers' receive function)
151 layer->up->receive(layer->up, packet);
162 Net device and Socket implement the 'receive()' function defined by
164 receive of packets is handled as by the rest of the layers: the 'dn->transmit()'

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