///Register `JSQR` reader
pub type R = crate::R<JSQRrs>;
///Register `JSQR` writer
pub type W = crate::W<JSQRrs>;
///Field `JL` reader - Injected channel sequence length These bits are written by software to define the total number of conversions in the injected channel conversion sequence. Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
pub type JL_R = crate::FieldReader;
///Field `JL` writer - Injected channel sequence length These bits are written by software to define the total number of conversions in the injected channel conversion sequence. Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
pub type JL_W<'a, REG> = crate::FieldWriter<'a, REG, 2, u8, crate::Safe>;
/**External trigger selection for injected group These bits select the external event used to trigger the start of conversion of an injected group: ... Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
Value on reset: 0*/
#[cfg_attr(feature = "defmt", derive(defmt::Format))]
#[derive(Clone, Copy, Debug, PartialEq, Eq)]
#[repr(u8)]
pub enum JEXTSEL {
///0: Timer 1 TRGO event
Tim1Trgo = 0,
///1: Timer 1 CC4 event
Tim1Cc4 = 1,
///2: Timer 2 TRGO event
Tim2Trgo = 2,
///3: Timer 2 CC1 event
Tim2Cc1 = 3,
///4: Timer 3 CC4 event
Tim3Cc4 = 4,
///5: Timer 4 TRGO event
Tim4Trgo = 5,
///6: EXTI line 15
Exti15 = 6,
///7: Timer 8 CC4 event
Tim8Cc4 = 7,
///8: Timer 1 TRGO2 event
Tim1Trgo2 = 8,
///9: Timer 8 TRGO event
Tim8Trgo = 9,
///10: Timer 8 TRGO2 event
Tim8Trgo2 = 10,
///11: Timer 3 CC3 event
Tim3Cc3 = 11,
///12: Timer 3 TRGO event
Tim3Trgo = 12,
///13: Timer 3 CC1 event
Tim3Cc1 = 13,
///14: Timer 6 TRGO event
Tim6Trgo = 14,
///15: Timer 15 TRGO event
Tim15Trgo = 15,
///16: HRTIM1_ADCTRG2 event
Hrtim1Adctrg2 = 16,
///17: HRTIM1_ADCTRG4 event
Hrtim1Adctrg4 = 17,
///18: LPTIM1_OUT event
Lptim1Out = 18,
///19: LPTIM2_OUT event
Lptim2Out = 19,
///20: LPTIM3_OUT event
Lptim3Out = 20,
}
impl From<JEXTSEL> for u8 {
#[inline(always)]
fn from(variant: JEXTSEL) -> Self {
variant as _
}
}
impl crate::FieldSpec for JEXTSEL {
type Ux = u8;
}
impl crate::IsEnum for JEXTSEL {}
///Field `JEXTSEL` reader - External trigger selection for injected group These bits select the external event used to trigger the start of conversion of an injected group: ... Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
pub type JEXTSEL_R = crate::FieldReader<JEXTSEL>;
impl JEXTSEL_R {
///Get enumerated values variant
#[inline(always)]
pub const fn variant(&self) -> Option<JEXTSEL> {
match self.bits {
0 => Some(JEXTSEL::Tim1Trgo),
1 => Some(JEXTSEL::Tim1Cc4),
2 => Some(JEXTSEL::Tim2Trgo),
3 => Some(JEXTSEL::Tim2Cc1),
4 => Some(JEXTSEL::Tim3Cc4),
5 => Some(JEXTSEL::Tim4Trgo),
6 => Some(JEXTSEL::Exti15),
7 => Some(JEXTSEL::Tim8Cc4),
8 => Some(JEXTSEL::Tim1Trgo2),
9 => Some(JEXTSEL::Tim8Trgo),
10 => Some(JEXTSEL::Tim8Trgo2),
11 => Some(JEXTSEL::Tim3Cc3),
12 => Some(JEXTSEL::Tim3Trgo),
13 => Some(JEXTSEL::Tim3Cc1),
14 => Some(JEXTSEL::Tim6Trgo),
15 => Some(JEXTSEL::Tim15Trgo),
16 => Some(JEXTSEL::Hrtim1Adctrg2),
17 => Some(JEXTSEL::Hrtim1Adctrg4),
18 => Some(JEXTSEL::Lptim1Out),
19 => Some(JEXTSEL::Lptim2Out),
20 => Some(JEXTSEL::Lptim3Out),
_ => None,
}
}
///Timer 1 TRGO event
#[inline(always)]
pub fn is_tim1_trgo(&self) -> bool {
*self == JEXTSEL::Tim1Trgo
}
///Timer 1 CC4 event
#[inline(always)]
pub fn is_tim1_cc4(&self) -> bool {
*self == JEXTSEL::Tim1Cc4
}
///Timer 2 TRGO event
#[inline(always)]
pub fn is_tim2_trgo(&self) -> bool {
*self == JEXTSEL::Tim2Trgo
}
///Timer 2 CC1 event
#[inline(always)]
pub fn is_tim2_cc1(&self) -> bool {
*self == JEXTSEL::Tim2Cc1
}
///Timer 3 CC4 event
#[inline(always)]
pub fn is_tim3_cc4(&self) -> bool {
*self == JEXTSEL::Tim3Cc4
}
///Timer 4 TRGO event
#[inline(always)]
pub fn is_tim4_trgo(&self) -> bool {
*self == JEXTSEL::Tim4Trgo
}
///EXTI line 15
#[inline(always)]
pub fn is_exti15(&self) -> bool {
*self == JEXTSEL::Exti15
}
///Timer 8 CC4 event
#[inline(always)]
pub fn is_tim8_cc4(&self) -> bool {
*self == JEXTSEL::Tim8Cc4
}
///Timer 1 TRGO2 event
#[inline(always)]
pub fn is_tim1_trgo2(&self) -> bool {
*self == JEXTSEL::Tim1Trgo2
}
///Timer 8 TRGO event
#[inline(always)]
pub fn is_tim8_trgo(&self) -> bool {
*self == JEXTSEL::Tim8Trgo
}
///Timer 8 TRGO2 event
#[inline(always)]
pub fn is_tim8_trgo2(&self) -> bool {
*self == JEXTSEL::Tim8Trgo2
}
///Timer 3 CC3 event
#[inline(always)]
pub fn is_tim3_cc3(&self) -> bool {
*self == JEXTSEL::Tim3Cc3
}
///Timer 3 TRGO event
#[inline(always)]
pub fn is_tim3_trgo(&self) -> bool {
*self == JEXTSEL::Tim3Trgo
}
///Timer 3 CC1 event
#[inline(always)]
pub fn is_tim3_cc1(&self) -> bool {
*self == JEXTSEL::Tim3Cc1
}
///Timer 6 TRGO event
#[inline(always)]
pub fn is_tim6_trgo(&self) -> bool {
*self == JEXTSEL::Tim6Trgo
}
///Timer 15 TRGO event
#[inline(always)]
pub fn is_tim15_trgo(&self) -> bool {
*self == JEXTSEL::Tim15Trgo
}
///HRTIM1_ADCTRG2 event
#[inline(always)]
pub fn is_hrtim1_adctrg2(&self) -> bool {
*self == JEXTSEL::Hrtim1Adctrg2
}
///HRTIM1_ADCTRG4 event
#[inline(always)]
pub fn is_hrtim1_adctrg4(&self) -> bool {
*self == JEXTSEL::Hrtim1Adctrg4
}
///LPTIM1_OUT event
#[inline(always)]
pub fn is_lptim1_out(&self) -> bool {
*self == JEXTSEL::Lptim1Out
}
///LPTIM2_OUT event
#[inline(always)]
pub fn is_lptim2_out(&self) -> bool {
*self == JEXTSEL::Lptim2Out
}
///LPTIM3_OUT event
#[inline(always)]
pub fn is_lptim3_out(&self) -> bool {
*self == JEXTSEL::Lptim3Out
}
}
///Field `JEXTSEL` writer - External trigger selection for injected group These bits select the external event used to trigger the start of conversion of an injected group: ... Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
pub type JEXTSEL_W<'a, REG> = crate::FieldWriter<'a, REG, 5, JEXTSEL>;
impl<'a, REG> JEXTSEL_W<'a, REG>
where
REG: crate::Writable + crate::RegisterSpec,
REG::Ux: From<u8>,
{
///Timer 1 TRGO event
#[inline(always)]
pub fn tim1_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim1Trgo)
}
///Timer 1 CC4 event
#[inline(always)]
pub fn tim1_cc4(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim1Cc4)
}
///Timer 2 TRGO event
#[inline(always)]
pub fn tim2_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim2Trgo)
}
///Timer 2 CC1 event
#[inline(always)]
pub fn tim2_cc1(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim2Cc1)
}
///Timer 3 CC4 event
#[inline(always)]
pub fn tim3_cc4(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim3Cc4)
}
///Timer 4 TRGO event
#[inline(always)]
pub fn tim4_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim4Trgo)
}
///EXTI line 15
#[inline(always)]
pub fn exti15(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Exti15)
}
///Timer 8 CC4 event
#[inline(always)]
pub fn tim8_cc4(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim8Cc4)
}
///Timer 1 TRGO2 event
#[inline(always)]
pub fn tim1_trgo2(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim1Trgo2)
}
///Timer 8 TRGO event
#[inline(always)]
pub fn tim8_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim8Trgo)
}
///Timer 8 TRGO2 event
#[inline(always)]
pub fn tim8_trgo2(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim8Trgo2)
}
///Timer 3 CC3 event
#[inline(always)]
pub fn tim3_cc3(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim3Cc3)
}
///Timer 3 TRGO event
#[inline(always)]
pub fn tim3_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim3Trgo)
}
///Timer 3 CC1 event
#[inline(always)]
pub fn tim3_cc1(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim3Cc1)
}
///Timer 6 TRGO event
#[inline(always)]
pub fn tim6_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim6Trgo)
}
///Timer 15 TRGO event
#[inline(always)]
pub fn tim15_trgo(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Tim15Trgo)
}
///HRTIM1_ADCTRG2 event
#[inline(always)]
pub fn hrtim1_adctrg2(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Hrtim1Adctrg2)
}
///HRTIM1_ADCTRG4 event
#[inline(always)]
pub fn hrtim1_adctrg4(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Hrtim1Adctrg4)
}
///LPTIM1_OUT event
#[inline(always)]
pub fn lptim1_out(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Lptim1Out)
}
///LPTIM2_OUT event
#[inline(always)]
pub fn lptim2_out(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Lptim2Out)
}
///LPTIM3_OUT event
#[inline(always)]
pub fn lptim3_out(self) -> &'a mut crate::W<REG> {
self.variant(JEXTSEL::Lptim3Out)
}
}
/**External trigger enable and polarity selection for injected channels These bits are set and cleared by software to select the external trigger polarity and enable the trigger of an injected group. If JQDIS=1 (queue disabled), Hardware trigger detection disabled (conversions can be launched by software Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing). If JQM=1 and if the Queue of Context becomes empty, the software and hardware triggers of the injected sequence are both internally disabled (refer to Queue of context for injected conversions)
Value on reset: 0*/
#[cfg_attr(feature = "defmt", derive(defmt::Format))]
#[derive(Clone, Copy, Debug, PartialEq, Eq)]
#[repr(u8)]
pub enum JEXTEN {
///0: Trigger detection disabled
Disabled = 0,
///1: Trigger detection on the rising edge
RisingEdge = 1,
///2: Trigger detection on the falling edge
FallingEdge = 2,
///3: Trigger detection on both the rising and falling edges
BothEdges = 3,
}
impl From<JEXTEN> for u8 {
#[inline(always)]
fn from(variant: JEXTEN) -> Self {
variant as _
}
}
impl crate::FieldSpec for JEXTEN {
type Ux = u8;
}
impl crate::IsEnum for JEXTEN {}
///Field `JEXTEN` reader - External trigger enable and polarity selection for injected channels These bits are set and cleared by software to select the external trigger polarity and enable the trigger of an injected group. If JQDIS=1 (queue disabled), Hardware trigger detection disabled (conversions can be launched by software Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing). If JQM=1 and if the Queue of Context becomes empty, the software and hardware triggers of the injected sequence are both internally disabled (refer to Queue of context for injected conversions)
pub type JEXTEN_R = crate::FieldReader<JEXTEN>;
impl JEXTEN_R {
///Get enumerated values variant
#[inline(always)]
pub const fn variant(&self) -> JEXTEN {
match self.bits {
0 => JEXTEN::Disabled,
1 => JEXTEN::RisingEdge,
2 => JEXTEN::FallingEdge,
3 => JEXTEN::BothEdges,
_ => unreachable!(),
}
}
///Trigger detection disabled
#[inline(always)]
pub fn is_disabled(&self) -> bool {
*self == JEXTEN::Disabled
}
///Trigger detection on the rising edge
#[inline(always)]
pub fn is_rising_edge(&self) -> bool {
*self == JEXTEN::RisingEdge
}
///Trigger detection on the falling edge
#[inline(always)]
pub fn is_falling_edge(&self) -> bool {
*self == JEXTEN::FallingEdge
}
///Trigger detection on both the rising and falling edges
#[inline(always)]
pub fn is_both_edges(&self) -> bool {
*self == JEXTEN::BothEdges
}
}
///Field `JEXTEN` writer - External trigger enable and polarity selection for injected channels These bits are set and cleared by software to select the external trigger polarity and enable the trigger of an injected group. If JQDIS=1 (queue disabled), Hardware trigger detection disabled (conversions can be launched by software Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing). If JQM=1 and if the Queue of Context becomes empty, the software and hardware triggers of the injected sequence are both internally disabled (refer to Queue of context for injected conversions)
pub type JEXTEN_W<'a, REG> = crate::FieldWriter<'a, REG, 2, JEXTEN, crate::Safe>;
impl<'a, REG> JEXTEN_W<'a, REG>
where
REG: crate::Writable + crate::RegisterSpec,
REG::Ux: From<u8>,
{
///Trigger detection disabled
#[inline(always)]
pub fn disabled(self) -> &'a mut crate::W<REG> {
self.variant(JEXTEN::Disabled)
}
///Trigger detection on the rising edge
#[inline(always)]
pub fn rising_edge(self) -> &'a mut crate::W<REG> {
self.variant(JEXTEN::RisingEdge)
}
///Trigger detection on the falling edge
#[inline(always)]
pub fn falling_edge(self) -> &'a mut crate::W<REG> {
self.variant(JEXTEN::FallingEdge)
}
///Trigger detection on both the rising and falling edges
#[inline(always)]
pub fn both_edges(self) -> &'a mut crate::W<REG> {
self.variant(JEXTEN::BothEdges)
}
}
///Field `JSQ(1-4)` reader - %s conversion in injected sequence
pub type JSQ_R = crate::FieldReader;
///Field `JSQ(1-4)` writer - %s conversion in injected sequence
pub type JSQ_W<'a, REG> = crate::FieldWriter<'a, REG, 5>;
impl R {
///Bits 0:1 - Injected channel sequence length These bits are written by software to define the total number of conversions in the injected channel conversion sequence. Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
#[inline(always)]
pub fn jl(&self) -> JL_R {
JL_R::new((self.bits & 3) as u8)
}
///Bits 2:6 - External trigger selection for injected group These bits select the external event used to trigger the start of conversion of an injected group: ... Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
#[inline(always)]
pub fn jextsel(&self) -> JEXTSEL_R {
JEXTSEL_R::new(((self.bits >> 2) & 0x1f) as u8)
}
///Bits 7:8 - External trigger enable and polarity selection for injected channels These bits are set and cleared by software to select the external trigger polarity and enable the trigger of an injected group. If JQDIS=1 (queue disabled), Hardware trigger detection disabled (conversions can be launched by software Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing). If JQM=1 and if the Queue of Context becomes empty, the software and hardware triggers of the injected sequence are both internally disabled (refer to Queue of context for injected conversions)
#[inline(always)]
pub fn jexten(&self) -> JEXTEN_R {
JEXTEN_R::new(((self.bits >> 7) & 3) as u8)
}
///(1-4) conversion in injected sequence
///
///<div class="warning">`n` is number of field in register. `n == 0` corresponds to `JSQ1` field.</div>
#[inline(always)]
pub fn jsq(&self, n: u8) -> JSQ_R {
#[allow(clippy::no_effect)] [(); 4][n as usize];
JSQ_R::new(((self.bits >> (n * 6 + 9)) & 0x1f) as u8)
}
///Iterator for array of:
///(1-4) conversion in injected sequence
#[inline(always)]
pub fn jsq_iter(&self) -> impl Iterator<Item = JSQ_R> + '_ {
(0..4).map(move |n| JSQ_R::new(((self.bits >> (n * 6 + 9)) & 0x1f) as u8))
}
///Bits 9:13 - 1 conversion in injected sequence
#[inline(always)]
pub fn jsq1(&self) -> JSQ_R {
JSQ_R::new(((self.bits >> 9) & 0x1f) as u8)
}
///Bits 15:19 - 2 conversion in injected sequence
#[inline(always)]
pub fn jsq2(&self) -> JSQ_R {
JSQ_R::new(((self.bits >> 15) & 0x1f) as u8)
}
///Bits 21:25 - 3 conversion in injected sequence
#[inline(always)]
pub fn jsq3(&self) -> JSQ_R {
JSQ_R::new(((self.bits >> 21) & 0x1f) as u8)
}
///Bits 27:31 - 4 conversion in injected sequence
#[inline(always)]
pub fn jsq4(&self) -> JSQ_R {
JSQ_R::new(((self.bits >> 27) & 0x1f) as u8)
}
}
impl core::fmt::Debug for R {
fn fmt(&self, f: &mut core::fmt::Formatter) -> core::fmt::Result {
f.debug_struct("JSQR")
.field("jl", &self.jl())
.field("jextsel", &self.jextsel())
.field("jexten", &self.jexten())
.field("jsq1", &self.jsq1())
.field("jsq2", &self.jsq2())
.field("jsq3", &self.jsq3())
.field("jsq4", &self.jsq4())
.finish()
}
}
impl W {
///Bits 0:1 - Injected channel sequence length These bits are written by software to define the total number of conversions in the injected channel conversion sequence. Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
#[inline(always)]
pub fn jl(&mut self) -> JL_W<JSQRrs> {
JL_W::new(self, 0)
}
///Bits 2:6 - External trigger selection for injected group These bits select the external event used to trigger the start of conversion of an injected group: ... Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing).
#[inline(always)]
pub fn jextsel(&mut self) -> JEXTSEL_W<JSQRrs> {
JEXTSEL_W::new(self, 2)
}
///Bits 7:8 - External trigger enable and polarity selection for injected channels These bits are set and cleared by software to select the external trigger polarity and enable the trigger of an injected group. If JQDIS=1 (queue disabled), Hardware trigger detection disabled (conversions can be launched by software Note: The software is allowed to write these bits only when JADSTART is cleared to 0 (no injected conversion is ongoing). If JQM=1 and if the Queue of Context becomes empty, the software and hardware triggers of the injected sequence are both internally disabled (refer to Queue of context for injected conversions)
#[inline(always)]
pub fn jexten(&mut self) -> JEXTEN_W<JSQRrs> {
JEXTEN_W::new(self, 7)
}
///(1-4) conversion in injected sequence
///
///<div class="warning">`n` is number of field in register. `n == 0` corresponds to `JSQ1` field.</div>
#[inline(always)]
pub fn jsq(&mut self, n: u8) -> JSQ_W<JSQRrs> {
#[allow(clippy::no_effect)] [(); 4][n as usize];
JSQ_W::new(self, n * 6 + 9)
}
///Bits 9:13 - 1 conversion in injected sequence
#[inline(always)]
pub fn jsq1(&mut self) -> JSQ_W<JSQRrs> {
JSQ_W::new(self, 9)
}
///Bits 15:19 - 2 conversion in injected sequence
#[inline(always)]
pub fn jsq2(&mut self) -> JSQ_W<JSQRrs> {
JSQ_W::new(self, 15)
}
///Bits 21:25 - 3 conversion in injected sequence
#[inline(always)]
pub fn jsq3(&mut self) -> JSQ_W<JSQRrs> {
JSQ_W::new(self, 21)
}
///Bits 27:31 - 4 conversion in injected sequence
#[inline(always)]
pub fn jsq4(&mut self) -> JSQ_W<JSQRrs> {
JSQ_W::new(self, 27)
}
}
/**ADC injected sequence register
You can [`read`](crate::Reg::read) this register and get [`jsqr::R`](R). You can [`reset`](crate::Reg::reset), [`write`](crate::Reg::write), [`write_with_zero`](crate::Reg::write_with_zero) this register using [`jsqr::W`](W). You can also [`modify`](crate::Reg::modify) this register. See [API](https://docs.rs/svd2rust/#read--modify--write-api).*/
pub struct JSQRrs;
impl crate::RegisterSpec for JSQRrs {
type Ux = u32;
}
///`read()` method returns [`jsqr::R`](R) reader structure
impl crate::Readable for JSQRrs {}
///`write(|w| ..)` method takes [`jsqr::W`](W) writer structure
impl crate::Writable for JSQRrs {
type Safety = crate::Unsafe;
}
///`reset()` method sets JSQR to value 0
impl crate::Resettable for JSQRrs {}