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/openbmc/linux/tools/perf/util/
H A Devents_stats.h24 * multiplying nr_events[PERF_EVENT_SAMPLE] by a frequency isn't possible to get
/openbmc/linux/drivers/staging/media/atomisp/pci/isp/kernels/bnlm/
H A Dia_css_bnlm_param.h46 * vector by different shift value. Hence it will be simulated by multiplying
/openbmc/linux/Documentation/devicetree/bindings/iio/dac/
H A Dadi,ad5449.yaml14 Family of multiplying DACs from Analog Devices
/openbmc/linux/Documentation/devicetree/bindings/clock/ti/
H A Dapll.txt8 loop logic for multiplying the input clock to a desired output
H A Ddpll.txt8 loop logic for multiplying the input clock to a desired output
/openbmc/linux/Documentation/hwmon/
H A Dltc4260.rst45 real voltage by multiplying the reported value with (R1+R2)/R2, where R1 is the
H A Dltc4261.rst45 real voltage by multiplying the reported value with (R1+R2)/R2, where R1 is the
H A Dltc2945.rst45 real voltage by multiplying the reported value with (R1+R2)/R2, where R1 is the
/openbmc/linux/tools/arch/x86/include/asm/
H A Dpvclock.h36 * Scale a 64-bit delta by scaling and multiplying by a 32-bit fraction,
/openbmc/linux/arch/x86/include/asm/
H A Dpvclock.h40 * Scale a 64-bit delta by scaling and multiplying by a 32-bit fraction,
/openbmc/linux/sound/soc/sof/
H A Dsof-utils.c42 * This can be calculated by multiplying the page number by 2.5. in snd_sof_create_page_table()
/openbmc/qemu/include/hw/
H A Dclock.h264 * in nanoseconds" value and then multiplying that by a number
282 * units, and we can convert to nanoseconds by multiplying by in clock_ticks_to_ns()
/openbmc/linux/Documentation/devicetree/bindings/serial/
H A Dfsl-imx-uart.yaml98 the amount of chunks used for the device. Multiplying both numbers is
/openbmc/linux/net/bridge/netfilter/
H A Debt_limit.c61 /* If multiplying would overflow... */ in user2credits()
/openbmc/linux/drivers/media/platform/renesas/vsp1/
H A Dvsp1_rpf.c73 * pstride has both STRIDE_Y and STRIDE_C, but multiplying the whole in rpf_configure_stream()
74 * of pstride by 2 is conveniently OK here as we are multiplying both in rpf_configure_stream()
/openbmc/linux/drivers/power/supply/
H A Dds2760_battery.c283 * reports in units of uV, so convert by multiplying by 4880. */ in ds2760_battery_read_status()
289 * class reports in units of µA, so convert by multiplying by 625. */ in ds2760_battery_read_status()
303 * multiplying by .125 * 10 = 1.25. */ in ds2760_battery_read_status()
/openbmc/linux/crypto/
H A Dechainiv.c5 * This generator generates an IV based on a sequence number by multiplying
/openbmc/u-boot/lib/
H A Dcrc32.c44 is just exclusive-or, and multiplying a polynomial by x is a right shift by
50 This calculation is done using the shift-register method of multiplying and
/openbmc/linux/arch/xtensa/lib/
H A Dumulsidi3.S191 version of _mulsi3 is used for multiplying 16-bit chunks of
/openbmc/linux/drivers/watchdog/
H A Dbooke_wdt.c66 * so divide the timebase freq instead of multiplying tmp in period_to_sec()
/openbmc/linux/drivers/hwmon/
H A Dlm70.c82 * So it's equivalent to multiplying by 0.25 * 1000 = 250. in temp1_input_show()
/openbmc/linux/block/partitions/
H A Damiga.c118 * We are multiplying four 32 bit numbers to one sector_t! in amiga_partition()
/openbmc/linux/net/netfilter/
H A Dxt_limit.c97 /* If multiplying would overflow... */ in user2credits()
/openbmc/linux/kernel/bpf/
H A Dtnum.c114 /* Generate partial products by multiplying each bit in the multiplier (tnum a)
/openbmc/u-boot/arch/m68k/cpu/mcf532x/
H A Dspeed.c173 * Multiplying by 100 when calculating the temp value, in clock_pll()

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