| /kernel/linux/linux-5.10/Documentation/devicetree/bindings/sound/ |
| D | fsl,audmix.txt | 3 The Audio Mixer is a on-chip functional module that allows mixing of two 4 audio streams into a single audio stream. Audio Mixer has two input serial 5 audio interfaces. These are driven by two Synchronous Audio interface 8 from two interfaces into a single sample. Before mixing, audio samples of 9 two inputs can be attenuated based on configuration. The output of the 20 Mixing operation is independent of audio sample rate but the two audio 37 DAIs. The current implementation requires two phandles
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| /kernel/linux/linux-5.10/tools/testing/selftests/net/forwarding/ |
| D | tc_vlan_modify.sh | 108 check_fail $? "ping between two different vlans passed when should not" 111 check_fail $? "ping6 between two different vlans passed when should not" 119 check_err $? "ping between two different vlans failed when should not" 122 check_err $? "ping6 between two different vlans failed when should not" 135 check_fail $? "ping between two different vlans passed when should not" 138 check_fail $? "ping6 between two different vlans passed when should not" 146 check_err $? "ping between two different vlans failed when should not" 149 check_err $? "ping6 between two different vlans failed when should not"
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| /kernel/linux/linux-4.19/Documentation/driver-api/ |
| D | device_connection.rst | 16 two separate devices. 18 Device connections alone do not create a dependency between the two devices. 20 A dependency between the two devices exists only if one of the two endpoint 32 The connection description consists of the names of the two devices with the 34 is needed if there are multiple connections between the two devices.
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| D | edac.rst | 44 controller. Typically, it contains two channels. Two channels at the 49 is calculated using two DIMMs instead of one. Due to that, it is capable 62 The data size accessed by the memory controller is interlaced into two 78 commonly drive two chip-select pins to a memory stick. A single-ranked 85 A double-ranked stick has two chip-select rows which access different 86 sets of memory devices. The two rows cannot be accessed concurrently. 92 A double-sided stick has two chip-select rows which access different sets 93 of memory devices. The two rows cannot be accessed concurrently. 101 set has two chip-select rows and if double-sided sticks are used these
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| /kernel/linux/linux-5.10/Documentation/driver-api/ |
| D | edac.rst | 44 controller. Typically, it contains two channels. Two channels at the 49 is calculated using two DIMMs instead of one. Due to that, it is capable 62 The data size accessed by the memory controller is interlaced into two 78 commonly drive two chip-select pins to a memory stick. A single-ranked 85 A double-ranked stick has two chip-select rows which access different 86 sets of memory devices. The two rows cannot be accessed concurrently. 92 A double-sided stick has two chip-select rows which access different sets 93 of memory devices. The two rows cannot be accessed concurrently. 101 set has two chip-select rows and if double-sided sticks are used these
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| /kernel/linux/linux-4.19/Documentation/devicetree/bindings/phy/ |
| D | apm-xgene-phy.txt | 19 Two set of 3-tuple setting for each (up to 3) 25 Two set of 3-tuple setting for each (up to 3) 28 gain control. Two set of 3-tuple setting for each 31 - apm,tx-amplitude : Amplitude control. Two set of 3-tuple setting for 35 - apm,tx-pre-cursor1 : 1st pre-cursor emphasis taps control. Two set of 39 - apm,tx-pre-cursor2 : 2st pre-cursor emphasis taps control. Two set of 43 - apm,tx-post-cursor : Post-cursor emphasis taps control. Two set of
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| /kernel/linux/linux-5.10/Documentation/devicetree/bindings/phy/ |
| D | apm-xgene-phy.txt | 19 Two set of 3-tuple setting for each (up to 3) 25 Two set of 3-tuple setting for each (up to 3) 28 gain control. Two set of 3-tuple setting for each 31 - apm,tx-amplitude : Amplitude control. Two set of 3-tuple setting for 35 - apm,tx-pre-cursor1 : 1st pre-cursor emphasis taps control. Two set of 39 - apm,tx-pre-cursor2 : 2st pre-cursor emphasis taps control. Two set of 43 - apm,tx-post-cursor : Post-cursor emphasis taps control. Two set of
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| /kernel/linux/linux-5.10/lib/ |
| D | test_stackinit.c | 69 #define INIT_STRUCT_static_partial = { .two = 0, } 71 .two = 0, \ 75 #define INIT_STRUCT_dynamic_partial = { .two = arg->two, } 77 .two = arg->two, \ 82 var.two = 0 85 var.two = 0; \ 198 unsigned long two; member 206 char two; member 215 u8 two; member 223 char *two; member [all …]
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| /kernel/linux/linux-4.19/tools/memory-model/litmus-tests/ |
| D | README | 4 Test of read-read coherence, that is, whether or not two 18 Test of write-write coherence, that is, whether or not two 24 sufficient to cause two different reading processes to agree on 32 needed to cause two different reading processes to agree on the 53 of two variables then writes to the other? 57 litmus test, where each process reads from one of two variables then 96 but with two processes instead of three.) 132 These two are members of an extension of the MP litmus-test
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| /kernel/linux/linux-5.10/Documentation/devicetree/bindings/iommu/ |
| D | mediatek,iommu.txt | 4 this M4U have two generations of HW architecture. Generation one uses flat 5 pagetable, and only supports 4K size page mapping. Generation two uses the 60 "mediatek,mt2712-m4u" for mt2712 which uses generation two m4u HW. 61 "mediatek,mt6779-m4u" for mt6779 which uses generation two m4u HW. 64 "mediatek,mt8167-m4u" for mt8167 which uses generation two m4u HW. 65 "mediatek,mt8173-m4u" for mt8173 which uses generation two m4u HW. 66 "mediatek,mt8183-m4u" for mt8183 which uses generation two m4u HW.
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| /kernel/linux/linux-5.10/tools/testing/selftests/exec/ |
| D | binfmt_script | 140 # Two bytes under size, leaving newline visible. 141 test(name="two-under", size=SIZE-2) 159 test(name="two-under-no-nl", size=SIZE-2, newline="") 160 test(name="two-under-trunc-arg", size=SIZE-2, arg=" ") 161 test(name="two-under-leading", size=SIZE-2, leading=" ") 162 test(name="two-under-leading-trunc-arg", size=SIZE-2, leading=" ", arg=" ") 164 test(name="two-under-no-nl", size=int(SIZE/2), newline="") 165 test(name="two-under-trunc-arg", size=int(SIZE/2), arg=" ") 166 test(name="two-under-leading", size=int(SIZE/2), leading=" ") 167 test(name="two-under-lead-trunc-arg", size=int(SIZE/2), leading=" ", arg=" ")
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| /kernel/linux/linux-5.10/Documentation/userspace-api/media/v4l/ |
| D | pixfmt-nv12mt.rst | 10 has two planes - one for luminance and one for chrominance. Chroma 19 This is the two-plane versions of the YUV 4:2:0 format where data is 21 two sub-images or planes. The Y plane has one byte per pixel and pixels 27 alignment is 32. Every four adjacent buffers - two horizontally and two
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| /kernel/linux/linux-4.19/Documentation/media/uapi/v4l/ |
| D | pixfmt-nv12mt.rst | 10 has two planes - one for luminance and one for chrominance. Chroma 19 This is the two-plane versions of the YUV 4:2:0 format where data is 21 two sub-images or planes. The Y plane has one byte per pixel and pixels 27 alignment is 32. Every four adjacent buffers - two horizontally and two
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| /kernel/linux/linux-5.10/Documentation/gpu/ |
| D | komeda-kms.rst | 66 introduces Layer Split, which splits the whole image to two half parts and feeds 67 them to two Layers A and B, and does the scaling independently. After scaling 68 the result need to be fed to merger to merge two part images together, and then 74 compiz result to two parts and then feed them to two scalers. 80 adjusted to fit different usages. And D71 has two pipelines, which support two 84 Two pipelines work independently and separately to drive two display outputs. 87 Two pipelines work together to drive only one display output. 306 capabilities, and a specific component includes two parts: 328 achieve this, split the komeda device into two layers: CORE and CHIP. 384 Layer_Split is quite complicated feature, which splits a big image into two [all …]
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| /kernel/linux/linux-5.10/net/l2tp/ |
| D | Kconfig | 3 # Layer Two Tunneling Protocol (L2TP) 7 tristate "Layer Two Tunneling Protocol (L2TP)" 12 Layer Two Tunneling Protocol 54 Layer Two Tunneling Protocol Version 3 58 The Layer Two Tunneling Protocol (L2TP) provides a dynamic 77 The L2TPv3 protocol defines two possible encapsulations for
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| /kernel/linux/linux-4.19/net/l2tp/ |
| D | Kconfig | 2 # Layer Two Tunneling Protocol (L2TP) 6 tristate "Layer Two Tunneling Protocol (L2TP)" 11 Layer Two Tunneling Protocol 53 Layer Two Tunneling Protocol Version 3 57 The Layer Two Tunneling Protocol (L2TP) provides a dynamic 76 The L2TPv3 protocol defines two possible encapsulations for
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| /kernel/linux/linux-4.19/arch/arm/probes/kprobes/ |
| D | test-arm.c | 1179 #define COPROCESSOR_INSTRUCTIONS_ST_LD(two,cc) \ in kprobe_arm_test_cases() argument 1180 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #4]") \ in kprobe_arm_test_cases() 1181 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #-4]") \ in kprobe_arm_test_cases() 1182 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #4]!") \ in kprobe_arm_test_cases() 1183 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #-4]!") \ in kprobe_arm_test_cases() 1184 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], #4") \ in kprobe_arm_test_cases() 1185 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], #-4") \ in kprobe_arm_test_cases() 1186 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], {1}") \ in kprobe_arm_test_cases() 1187 TEST_COPROCESSOR("stc"two"l 0, cr0, [r13, #4]") \ in kprobe_arm_test_cases() 1188 TEST_COPROCESSOR("stc"two"l 0, cr0, [r13, #-4]") \ in kprobe_arm_test_cases() [all …]
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| /kernel/linux/linux-5.10/arch/arm/probes/kprobes/ |
| D | test-arm.c | 1176 #define COPROCESSOR_INSTRUCTIONS_ST_LD(two,cc) \ in kprobe_arm_test_cases() argument 1177 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #4]") \ in kprobe_arm_test_cases() 1178 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #-4]") \ in kprobe_arm_test_cases() 1179 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #4]!") \ in kprobe_arm_test_cases() 1180 TEST_COPROCESSOR("stc"two" 0, cr0, [r13, #-4]!") \ in kprobe_arm_test_cases() 1181 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], #4") \ in kprobe_arm_test_cases() 1182 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], #-4") \ in kprobe_arm_test_cases() 1183 TEST_COPROCESSOR("stc"two" 0, cr0, [r13], {1}") \ in kprobe_arm_test_cases() 1184 TEST_COPROCESSOR("stc"two"l 0, cr0, [r13, #4]") \ in kprobe_arm_test_cases() 1185 TEST_COPROCESSOR("stc"two"l 0, cr0, [r13, #-4]") \ in kprobe_arm_test_cases() [all …]
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| /kernel/linux/linux-4.19/Documentation/input/devices/ |
| D | elantech.rst | 27 5.2.3 Two finger touch 32 6.2.2 Two finger touch 53 per packet, and provides additional features such as position of two fingers, 55 for 2 fingers the concatenation of two 6 bytes packets) and allows tracking 282 firmware 1.x seem to map one, two and three finger taps 331 tw = 1 when two finger touch 482 Two finger touch 485 Note that the two pairs of coordinates are not exactly the coordinates of the 486 two fingers, but only the pair of the lower-left and upper-right coordinates. 488 defined by these two points. [all …]
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| /kernel/linux/linux-5.10/Documentation/input/devices/ |
| D | elantech.rst | 27 5.2.3 Two finger touch 32 6.2.2 Two finger touch 53 per packet, and provides additional features such as position of two fingers, 55 for 2 fingers the concatenation of two 6 bytes packets) and allows tracking 282 firmware 1.x seem to map one, two and three finger taps 331 tw = 1 when two finger touch 482 Two finger touch 485 Note that the two pairs of coordinates are not exactly the coordinates of the 486 two fingers, but only the pair of the lower-left and upper-right coordinates. 488 defined by these two points. [all …]
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| /kernel/linux/linux-4.19/Documentation/cgroup-v1/ |
| D | blkio-controller.txt | 11 Currently two IO control policies are implemented. First one is proportional 22 You can do a very simple testing of running two dd threads in two different 38 - Create two cgroups 45 - Create two same size files (say 512MB each) on same disk (file1, file2) and 46 launch two dd threads in different cgroup to read those files. 185 two fields specify the major and minor number of the device and 191 two fields specify the major and minor number of the device and 198 or async. First two fields specify the major and minor number of the 205 or async. First two fields specify the major and minor number of the 218 the type of operation - read or write, sync or async. First two fields [all …]
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| /kernel/linux/linux-5.10/include/uapi/linux/netfilter_bridge/ |
| D | ebt_802_3.h | 20 * Control field may be one or two bytes. If the first byte has 21 * the value 0x03 then the entire length is one byte, otherwise it is two. 23 * Two byte controls are used in Numbered Information frames. 29 /* ui has one byte ctrl, ni has two */
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| /kernel/linux/linux-4.19/include/uapi/linux/netfilter_bridge/ |
| D | ebt_802_3.h | 20 * Control field may be one or two bytes. If the first byte has 21 * the value 0x03 then the entire length is one byte, otherwise it is two. 23 * Two byte controls are used in Numbered Information frames. 29 /* ui has one byte ctrl, ni has two */
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| /kernel/linux/linux-5.10/tools/include/linux/ |
| D | log2.h | 33 * Determine whether some value is a power of two, where zero is 34 * *not* considered a power of two. 44 * round up to nearest power of two 53 * round down to nearest power of two 144 * roundup_pow_of_two - round the given value up to nearest power of two 147 * round the given value up to the nearest power of two 161 * rounddown_pow_of_two - round the given value down to nearest power of two 164 * round the given value down to the nearest power of two
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| /kernel/linux/linux-5.10/Documentation/driver-api/media/drivers/ |
| D | cpia2_devel.rst | 22 division of ST Microelectronics). There are two versions. The first is the 25 which can handle up to 30 fps VGA. Both coprocessors can be attached to two 29 The two chipsets operate almost identically. The core is an 8051 processor, 30 running two different versions of firmware. The 672 runs the VP4 video 32 mappings for the two chips. In these cases, the symbols defined in the
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